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Патент США №

11108167

Автор(ы)

Yoon и др.

Дата выдачи

31 августа 2021 г.


Waveguide antenna element-based beam forming phased array antenna system for millimeter wave communication

"Система фазированных антенных решеток на основе волноводных антенных элементов с формированием луча для связи миллиметрового диапазона"

РЕФЕРАТ

An antenna system, includes a first substrate, a plurality of chips, and a waveguide antenna element based beam forming phased array. The waveguide antenna element based beam forming phased array has a unitary body that comprises a plurality of radiating waveguide antenna cells in a first layout for millimeter wave communication. Each radiating waveguide antenna cell comprises a plurality of pins that are connected with a body of a corresponding radiating waveguide antenna cell that acts as ground for the plurality of pins. A first end of the plurality of radiating waveguide antenna cells of the waveguide antenna element based beam forming phased array, as the unitary body, in the first layout is mounted on the first substrate. The plurality of chips are electrically connected with the plurality of pins and the ground of each of the plurality of radiating waveguide antenna cells to control beamforming.


Автор(ы):

Seunghwan Yoon (Irvine, CA), Ahmadreza Rofougaran (Newport Beach, CA), Sam Gharavi (Irvine, CA), Kartik Sridharan (San Diego, CA), Donghyup Shin (Irvine, CA), Farid Shirinfar (Granada Hills, CA), Stephen Wu (Fountain Valley, CA), Maryam Rofougaran (Rancho Palos Verdes, CA), Alfred Grau Besoli (Irvine, CA), Enver Adas (Newport Beach, CA), Zhihui Wang (Tustin, CA)

Заявитель:

НаименованиеГородШтатСтранаТип

MOVANDI CORPORATION

Newport Beach

CA

US

Патентообладатель:

SILICON VALLEY BANK (Santa Clara, CA)

Идентификатор семейства:

67477567

Номер заявки:

16/391,628

Приоритет:

23 апреля 2019 г.


Данные о предшествующей публикации


Идентификатор патентаДата публикации
US 20190267722 A1Aug 29, 2019


РОДСТВЕННЫЕ ПАТЕНТНЫЕ ДОКУМЕНТЫ США


Номер заявкиДата подачи заявкиНомер патентаДата публикации
15904521Feb 26, 201810637159

Действующий класс US:1/1
Действующий класс СПК:H01Q13/20; H01Q1/523; H01Q3/34; H01Q21/24; H01Q21/22; H01Q21/064; H01Q21/0025; H01Q1/02
Действующий класс МПК:H01Q13/00; H01Q3/34; H01Q13/20; H01Q1/52; H01Q21/22; H01Q21/00; H01Q1/02
Область поиска:;343/824,751,767-771,893


ПРОЦИТИРОВАННЫЕ ССЫЛКИ [НА КОТОРЫЕ ССЫЛАЮТСЯ]



ПАТЕНТНЫЕ ДОКУМЕНТЫ США

3835469September 1974Chen et al.
4799062January 1989Sanderford et al.
5473602December 1995McKenna et al.
5479651December 1995Nakaguchi
5561850October 1996Makitalo et al.
5598173January 1997Forti et al.
5666124September 1997Chethik et al.
5771017June 1998Dean et al.
5883602March 1999Volman
5905473May 1999Taenzer
5940033August 1999Locher et al.
6018316January 2000Rudish et al.
6307502October 2001Marti-Canales et al.
6405018June 2002Reudink et al.
6433920August 2002Welch et al.
6456252September 2002Goyette
6577631June 2003Keenan et al.
6718159April 2004Sato
6804491October 2004Uesugi
6992622January 2006Chiang et al.
7020482March 2006Medvedev et al.
7058367June 2006Luo et al.
7187949March 2007Chang et al.
7206294April 2007Garahi et al.
7248841July 2007Agee et al.
7339979March 2008Kelkar
7363058April 2008Gustaf
7424225September 2008Elliott
7480486January 2009Oh et al.
7574236August 2009Mansour
7636573December 2009Walton et al.
7911985March 2011Proctor, Jr. et al.
7920889April 2011Hoshino et al.
7986742July 2011Ketchum et al.
8014366September 2011Wax et al.
8045638October 2011Grant et al.
8121235February 2012Sun et al.
8190102May 2012Rofougaran
8228188July 2012Key et al.
8314736November 2012Moshfeghi
8385305February 2013Negus et al.
8385452February 2013Gorokhov
8457798June 2013Hackett
8482462July 2013Komijani et al.
8570988October 2013Wallace et al.
8588193November 2013Ho et al.
8644262February 2014Sun et al.
8654815February 2014Forenza et al.
8744513June 2014Chen et al.
8885628November 2014Palanki et al.
9037094May 2015Moshfeghi
9065515June 2015Pezennec et al.
9225482December 2015Moshfeghi
9252908February 2016Branlund
9277510March 2016Helmersson et al.
9456354September 2016Branlund
9686060June 2017Moshfeghi
9698948July 2017Moshfeghi
9787103October 2017Leabman et al.
9829563November 2017Xiao et al.
10069555September 2018Islam et al.
10090887October 2018Rofougaran et al.
10103853October 2018Moshfeghi
10199717February 2019Rofougaran et al.
10277370April 2019Moshfeghi
10320090June 2019Zou et al.
10348371July 2019Rofougaran et al.
10355720July 2019Shattil
10560179February 2020Gharavi et al.
10587313March 2020Yoon et al.
10666326May 2020Rofougaran et al.
2002/0034958March 2002Oberschmidt et al.
2002/0132600September 2002Rudrapatna
2002/0193074December 2002Squibbs
2003/0012208January 2003Bernheim et al.
2003/0090418May 2003Howell
2003/0129989July 2003Gholmieh et al.
2003/0236109December 2003Nagata
2004/0077379April 2004Smith et al.
2004/0082356April 2004Walton et al.
2004/0095907May 2004Agee et al.
2004/0110469June 2004Judd et al.
2004/0116129June 2004Wilson
2004/0127174July 2004Frank et al.
2004/0166808August 2004Hasegawa et al.
2004/0204114October 2004Brennan et al.
2005/0048964March 2005Cohen et al.
2005/0069252March 2005Hwang et al.
2005/0134517June 2005Gotti
2005/0136943June 2005Banerjee et al.
2005/0181755August 2005Hoshino et al.
2005/0232216October 2005Webster et al.
2005/0237971October 2005Skraparlis
2005/0243756November 2005Cleveland et al.
2005/0270227December 2005Stephens
2006/0063494March 2006Zhang et al.
2006/0205342September 2006McKay et al.
2006/0246922November 2006Gasbarro et al.
2006/0267839November 2006Vaskelainen et al.
2007/0001924January 2007Hirabayashi
2007/0040025February 2007Goel et al.
2007/0052519March 2007Talty et al.
2007/0066254March 2007Tsuchie et al.
2007/0100548May 2007Small
2007/0115800May 2007Fonseka et al.
2007/0116012May 2007Chang et al.
2007/0127360June 2007Song et al.
2007/0160014July 2007Larsson
2007/0280310December 2007Muenter et al.
2008/0025208January 2008Chan
2008/0026763January 2008Rensburg et al.
2008/0076370March 2008Kotecha et al.
2008/0117961May 2008Han et al.
2008/0167049July 2008Karr et al.
2008/0212582September 2008Zwart et al.
2008/0225758September 2008Proctor et al.
2008/0258993October 2008Gummalla et al.
2008/0261509October 2008Sen
2008/0303701December 2008Zhang et al.
2008/0315944December 2008Brown
2009/0009392January 2009Jacomb-Hood et al.
2009/0010215January 2009Kim et al.
2009/0028120January 2009Lee
2009/0029645January 2009Leroudier
2009/0092120April 2009Goto et al.
2009/0093265April 2009Kimura et al.
2009/0136227May 2009Lambert
2009/0156227June 2009Frerking et al.
2009/0175214July 2009Sfar et al.
2009/0191910July 2009Athalye et al.
2009/0195455August 2009Kim et al.
2009/0224137September 2009Hoermann
2009/0233545September 2009Sutskover et al.
2009/0296846December 2009Maru
2009/0325479December 2009Chakrabarti et al.
2010/0042881February 2010Wong
2010/0046655February 2010Lee et al.
2010/0080197April 2010Kanellakis et al.
2010/0090898April 2010Gallagher et al.
2010/0105403April 2010Lennartson et al.
2010/0117890May 2010Vook et al.
2010/0124895May 2010Martin et al.
2010/0136922June 2010Rofougaran
2010/0149039June 2010Komijani et al.
2010/0167639July 2010Ranson et al.
2010/0172309July 2010Forenza et al.
2010/0208776August 2010Song et al.
2010/0220012September 2010Reede
2010/0265925October 2010Liu et al.
2010/0266061October 2010Cheng et al.
2010/0267415October 2010Kakitsu et al.
2010/0273504October 2010Bull et al.
2010/0284446November 2010Mu et al.
2010/0291918November 2010Suzuki et al.
2010/0304680December 2010Kuffner et al.
2010/0304770December 2010Wietfeldt et al.
2010/0328157December 2010Culkin et al.
2011/0002410January 2011Forenza et al.
2011/0003610January 2011Key et al.
2011/0045764February 2011Maruyama et al.
2011/0063181March 2011Walker
2011/0069773March 2011Doron et al.
2011/0081875April 2011Imamura et al.
2011/0105032May 2011Maruhashi et al.
2011/0105167May 2011Pan et al.
2011/0136478June 2011Trigui
2011/0140954June 2011Fortuny-Guasch
2011/0142104June 2011Coldrey et al.
2011/0149835June 2011Shimada et al.
2011/0164510July 2011Zheng et al.
2011/0190005August 2011Cheon et al.
2011/0194504August 2011Gorokhov et al.
2011/0212684September 2011Nam et al.
2011/0222616September 2011Jiang et al.
2011/0268037November 2011Fujimoto
2011/0299441December 2011Petrovic
2012/0034924February 2012Kalhan
2012/0057508March 2012Moshfeghi
2012/0082070April 2012Hart et al.
2012/0082072April 2012Shen
2012/0083207April 2012Rofougaran et al.
2012/0083225April 2012Rofougaran et al.
2012/0083233April 2012Rofougaran et al.
2012/0083306April 2012Rofougaran et al.
2012/0093209April 2012Schmidt et al.
2012/0120884May 2012Yu et al.
2012/0129543May 2012Patel et al.
2012/0131650May 2012Gutt et al.
2012/0149300June 2012Forster
2012/0184203July 2012Tulino et al.
2012/0194385August 2012Schmidt et al.
2012/0206299August 2012Valdes-Garcia
2012/0224651September 2012Murakami et al.
2012/0230274September 2012Xiao et al.
2012/0238202September 2012Kim et al.
2012/0250659October 2012Sambhwani
2012/0257516October 2012Pazhyannur et al.
2012/0259547October 2012Morlock et al.
2012/0314570December 2012Forenza et al.
2013/0027240January 2013Chowdhury
2013/0027250January 2013Chen
2013/0039342February 2013Kazmi
2013/0040558February 2013Kazmi
2013/0044028February 2013Lea et al.
2013/0057447March 2013Pivit et al.
2013/0072112March 2013Gunnarsson et al.
2013/0072113March 2013Lee et al.
2013/0089123April 2013Rahul et al.
2013/0094439April 2013Moshfeghi
2013/0094522April 2013Moshfeghi
2013/0094544April 2013Moshfeghi
2013/0095747April 2013Moshfeghi
2013/0095770April 2013Moshfeghi
2013/0095874April 2013Moshfeghi
2013/0114468May 2013Hui et al.
2013/0155891June 2013Dinan
2013/0272220October 2013Li et al.
2013/0272437October 2013Eidson et al.
2013/0286962October 2013Heath, Jr. et al.
2013/0287139October 2013Zhu et al.
2013/0322561December 2013Abreu et al.
2013/0324055December 2013Kludt et al.
2013/0343235December 2013Khan
2014/0003338January 2014Rahul et al.
2014/0010319January 2014Baik et al.
2014/0016573January 2014Nuggehalli et al.
2014/0035731February 2014Chan et al.
2014/0044041February 2014Moshfeghi
2014/0044042February 2014Moshfeghi
2014/0044043February 2014Moshfeghi et al.
2014/0045478February 2014Moshfeghi
2014/0045541February 2014Moshfeghi et al.
2014/0072078March 2014Sergeyev et al.
2014/0077875March 2014Wang et al.
2014/0079165March 2014Kludt et al.
2014/0104124April 2014Chernokalov et al.
2014/0125539May 2014Katipally et al.
2014/0161018June 2014Chang et al.
2014/0198696July 2014Li et al.
2014/0241296August 2014Shattil
2014/0266866September 2014Swirhun et al.
2015/0003307January 2015Moshfeghi et al.
2015/0011160January 2015Jurgovan et al.
2015/0031407January 2015Moshfeghi
2015/0042744February 2015Ralston et al.
2015/0091706April 2015Chemishkian et al.
2015/0123496May 2015Leabman et al.
2015/0229133August 2015Reynolds et al.
2015/0296344October 2015Trojer et al.
2015/0303950October 2015Shattil
2015/0318897November 2015Hyde et al.
2015/0318905November 2015Moshfeghi et al.
2015/0341098November 2015Angeletti et al.
2016/0014613January 2016Ponnampalam et al.
2016/0054440February 2016Younis
2016/0094092March 2016Davlantes et al.
2016/0094318March 2016Shattil
2016/0192400June 2016Sohn et al.
2016/0203347July 2016Bartholomew et al.
2016/0211905July 2016Moshfeghi et al.
2016/0219567July 2016Gil et al.
2016/0285481September 2016Cohen
2017/0026218January 2017Shattil
2017/0062944March 2017Zimmerman et al.
2017/0078897March 2017Duan et al.
2017/0126374May 2017Moshfeghi et al.
2017/0156069June 2017Moshfeghi et al.
2017/0201437July 2017Balakrishnan et al.
2017/0212208July 2017Baek et al.
2017/0237290August 2017Bakker et al.
2017/0257155September 2017Liang et al.
2017/0264014September 2017Le-Ngoc
2017/0288727October 2017Rappaport
2017/0324480November 2017Elmirghani et al.
2017/0332249November 2017Guey et al.
2017/0339625November 2017Stapleton
2017/0353338December 2017Amadjikpe et al.
2018/0026586January 2018Carbone et al.
2018/0027471January 2018Zhang et al.
2018/0041270February 2018Buer et al.
2018/0048390February 2018Palmer et al.
2018/0063139March 2018Day et al.
2018/0090992March 2018Shrivastava et al.
2018/0109303April 2018Yoo et al.
2018/0115305April 2018Islam et al.
2018/0176799June 2018Lange et al.
2018/0183152June 2018Turpin et al.
2018/0220416August 2018Islam et al.
2019/0020402January 2019Gharavi et al.
2019/0089434March 2019Rainish et al.
2019/0123866April 2019Moshfeghi
2019/0230626July 2019Rune et al.
2019/0319754October 2019Moshfeghi
2019/0319755October 2019Moshfeghi
2019/0319756October 2019Moshfeghi
2020/0076491March 2020Zhang et al.
2020/0145079May 2020Marinier et al.
2020/0204249June 2020Pyun
2020/0412519December 2020Krishnaswamy et al.

ИНОСТРАННЫЕ ПАТЕНТЫ

1890441Mar 2013EP
2008027531Dec 2008WO
2016115545Oct 2016WO

ДРУГИЕ ССЫЛКИ


Baggett, Benjamin M.W. Optimization of Aperiodically Spaced Phased Arrays for Wideband Applications. MS Thesis. Virginia Polytechnic Institute and State University, 2011. pp. 1-137. cited by applicant .
Corrected Notice of Allowability for U.S. Appl. No. 15/904,521 dated May 6, 2019. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/031,007 dated Jul. 8, 2019. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 15/607,743 dated May 10, 2019. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 15/904,521 dated Jun. 21, 2019. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 15/904,521 dated May 10, 2019. cited by applicant .
Corrected Notice of Allowance in U.S. Appl. No. 15/607,743 dated Apr. 3, 2019. cited by applicant .
Ex Parte Quayle Action for U.S. Appl. No. 16/032,668 dated Jul. 10, 2019. cited by applicant .
K. Han and K. Huang, "Wirelessly Powered Backscatter Communication networks: Modeling, Coverage and Capacity," Apr. 9, 2016, Arxiv.com. cited by applicant .
Non-Final Office Action in U.S. Appl. No. 15/432,091 dated Nov. 22, 2017. cited by applicant .
Non-Final Office Action in U.S. Appl. No. 16/111,326 dated Mar. 1, 2019. cited by applicant .
Notice of Allowance in U.S. Appl. No. 15/432,091 dated Apr. 11, 2018. cited by applicant .
Notice of Allowance in U.S. Appl. No. 15/607,743 dated Jan. 22, 2019. cited by applicant .
Notice of Allowance in U.S. Appl. No. 15/834,894 dated Feb. 20, 2019. cited by applicant .
Notice of Allowance in U.S. Appl. No. 15/835,971 dated Jul. 23, 2018. cited by applicant .
Notice of Allowance in U.S. Appl. No. 15/835,971 dated May 29, 2018. cited by applicant .
Notice of Allowance in U.S. Appl. No. 15/904,521 dated Mar. 20, 2019. cited by applicant .
Notice of Allowance issued in U.S. Appl. No. 16/129,423 dated Jul. 15, 2019. cited by applicant .
Shimin Gong et al., "Backscatter Relay Communications Powered by Wireless Energy Beamforming," IEEE Trans. on Communication, 2018. cited by applicant .
Response to Rule 312 Communication for U.S. Appl. No. 15/834,894 dated Apr. 19, 2019; Miscellaneous Communication to Applicant for U.S. Appl. No. 15/834,894 dated Apr. 19, 2019. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 16/016,619 dated Sep. 25, 2018. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/031,007 dated Sep. 16, 2019. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 13/473,180 dated Jun. 11, 2014. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 15/904,521 dated Aug. 5, 2019. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/031,007 dated Aug. 5, 2019. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/031,007 dated Oct. 22, 2019. cited by applicant .
Examiner's Answer to Appeal Brief for U.S. Appl. No. 13/473,144 dated Jul. 26, 2017. cited by applicant .
Examiner's Answer to Appeal Brief for U.S. Appl. No. 13/473,160 dated Dec. 24, 2015. cited by applicant .
Examiner's Answer to Appeal Brief for U.S. Appl. No. 13/919,932 dated Jan. 10, 2017. cited by applicant .
Final Office Action for U.S. Appl. No. 13/473,144 dated Jul. 28, 2016. cited by applicant .
Final Office Action for U.S. Appl. No. 13/473/144 dated Aug. 14, 2014. cited by applicant .
Final Office Action for U.S. Appl. No. 13/919,932 dated Oct. 23, 2015. cited by applicant .
Final Office Action for U.S. Appl. No. 13/919,972 dated Jan. 21, 2016. cited by applicant .
Final Office Action for U.S. Appl. No. 14/940,130 dated Oct. 14, 2016. cited by applicant .
Final Office Action for U.S. Appl. No. 16/129,413 dated Aug. 13, 2019. cited by applicant .
Final Office Action for U.S. Appl. No. dated Oct. 22, 2014. cited by applicant .
International Preliminary Report on Patentability for International Patent PCT/US2012/058839, 5 pages, dated Apr. 22, 2014. cited by applicant .
List of References cited by Applicant and considered by Examiner for U.S. Appl. No. 14/325,218 dated Apr. 21, 2017. cited by applicant .
Misc Communication from USPTO for U.S. Appl. No. 16/382,386 dated Oct. 8, 2019. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 13/473,083 dated Mar. 3, 2014. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 13/473,096 dated Apr. 23, 2014. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 13/473,096 dated Dec. 9, 2013. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 13/473,096 dated Nov. 3, 2014. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 13/473,105 dated Nov. 25, 2013. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 13/473,113 dated Oct. 2, 2014. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 13/473,144 dated Feb. 6, 2014. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 13/473,144 dated Feb. 9, 2015. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 13/473,144 dated Oct. 7, 2015. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 13/473,160 dated Jan. 15, 2014. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 13/473,180 dated Sep. 12, 2013. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 13/919,922 dated Jan. 30, 2015. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 13/919,932 dated Feb. 6, 2015. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 13/919,958 dated Jan. 5, 2015. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 13/919,967 dated Feb. 9, 2015. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 13/919,972 dated Jun. 4, 2015. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 14/455,859 dated Nov. 13, 2015. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 14/709,136 dated Sep. 28, 2016. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 14/813,058 dated Jun. 10, 2016. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 14/940,130 dated Apr. 6, 2016. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 14/980,281 dated Apr. 20, 2016. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 14/980,338 dated Mar. 14, 2017. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 15/229,135 dated Dec. 21, 2017. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 15/372,417 dated May 3, 2018. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 15/441,209 dated Jul. 3, 2018. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 15/595,940 dated Nov. 17, 2017. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 15/616,911 dated Jan. 3, 2019. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 15/706,759 dated Jun. 12, 2018. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 15/893,626 dated Jun. 12, 2018. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 16/101,044 dated Dec. 26, 2018. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 16/125,757 dated Aug. 9, 2019. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/382,386 dated Dec. 30, 2019. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 15/616,911 dated Oct. 31, 2019. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 15/616,911 dated Dec. 12, 2019. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 15/904,521 dated Jan. 8, 2020. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/032,617 dated Jan. 9, 2020. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/032,617 dated Oct. 28, 2019. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/032,668 dated Dec. 30, 2019. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/129,423 dated Jan. 23, 2020. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/129,423 dated Nov. 7, 2019. cited by applicant .
Final Office Action for U.S. Appl. No. 16/125,757 dated Dec. 2, 2019. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 16/388,043 dated Dec. 27, 2019. cited by applicant .
Non-Final Office Action in U.S. Appl. No. 15/836,198 dated Oct. 31, 2019. cited by applicant .
Notice of Allowance for U.S. Appl. No. 15/595,919 dated Oct. 25, 2019. cited by applicant .
Notice of Allowance for U.S. Appl. No. 16/129,423 dated Nov. 27, 2019. cited by applicant .
Notice of Allowance for U.S. Appl. No. 16/294,025 dated Jan. 13, 2020. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 15/256,222 dated Oct. 28, 2020. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 15/836,198 dated Oct. 2, 2020. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/129,413 dated Nov. 27, 2020. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/153,735 dated Nov. 18, 2020. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/377,980 dated Oct. 5, 2020. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/526,544 dated Sep. 25, 2020. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/675,290 dated Dec. 16, 2020. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/684,789 dated Nov. 20, 2020. cited by applicant .
Final Office Action for U.S. Appl. No. 16/364,956 dated Oct. 2, 2020. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 16/233,044 dated Oct. 14, 2020. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 16/377,847 dated Dec. 14, 2020. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 16/398,156 dated Oct. 15, 2020. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 16/461,980 dated Sep. 21, 2020. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 16/666,680 dated Nov. 13, 2020. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 16/689,758 dated Sep. 29, 2020. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 16/941,690 dated Nov. 12, 2020. cited by applicant .
Notice of Allowability for U.S. Appl. No. 16/129,413 dated Nov. 9, 2020. cited by applicant .
Notice of Allowance for U.S. Appl. No. 16/125,757 dated Oct. 28, 2020. cited by applicant .
Notice of Allowance for U.S. Appl. No. 16/364,956 dated Dec. 11, 2020. cited by applicant .
Notice of Allowance for U.S. Appl. No. 16/388,043 dated Nov. 5, 2020. cited by applicant .
Notice of Allowance for U.S. Appl. No. 16/452,023 dated Nov. 16, 2020. cited by applicant .
Notice of Allowance for U.S. Appl. No. 16/675,290 dated Aug. 10, 2020. cited by applicant .
Notice of Allowance for U.S. Appl. No. 16/927,470 dated Oct. 29, 2020. cited by applicant .
Supplemental Notice of Allowance for U.S. Appl. No. 16/153,735 dated Oct. 9, 2020. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 16/129,413 dated Feb. 4, 2019. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 16/129,423 dated Feb. 4, 2019. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 16/231,903 dated Sep. 18, 2019. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 16/294,025 dated Sep. 12, 2019. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 16/377,980 dated Aug. 21, 2019. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 16/526,544 dated Sep. 18, 2019. cited by applicant .
Notice of Allowance for U.S. Appl. No. 13/473,083 dated Jan. 7, 2015. cited by applicant .
Notice of Allowance for U.S. Appl. No. 16/032,668 dated Sep. 20, 2019. cited by applicant .
Notice of Allowance for U.S. Appl. No. 13/473,096 dated Apr. 17, 2015. cited by applicant .
Notice of Allowance for U.S. Appl. No. 13/473,105 dated Jun. 10, 2014. cited by applicant .
Notice of Allowance for U.S. Appl. No. 13/473,113 dated Aug. 10, 2015. cited by applicant .
Notice of Allowance for U.S. Appl. No. 13/473,160 dated May 25, 2017. cited by applicant .
Notice of Allowance for U.S. Appl. No. 13/473,180 dated May 1, 2014. cited by applicant .
Notice of Allowance for U.S. Appl. No. 13/919,922 dated Oct. 27, 2015. cited by applicant .
Notice of Allowance for U.S. Appl. No. 13/919,932 dated Feb. 28, 2018. cited by applicant .
Notice of Allowance for U.S. Appl. No. 13/919,958 dated Sep. 2, 2015. cited by applicant .
Notice of Allowance for U.S. Appl. No. 13/919,967 dated Jul. 29, 2019. cited by applicant .
Notice of Allowance for U.S. Appl. No. 13/919,972 dated Dec. 20, 2016. cited by applicant .
Notice of Allowance for U.S. Appl. No. 14/325,218 dated Dec. 19, 2016. cited by applicant .
Notice of Allowance for U.S. Appl. No. 14/455,859 dated Apr. 20, 2016. cited by applicant .
Notice of Allowance for U.S. Appl. No. 14/709,136 dated Feb. 16, 2017. cited by applicant .
Notice of Allowance for U.S. Appl. No. 14/813,058 dated Nov. 7, 2016. cited by applicant .
Notice of Allowance for U.S. Appl. No. 14/940,130 dated Feb. 1, 2017. cited by applicant .
Notice of Allowance for U.S. Appl. No. 14/980,281 dated Feb. 7, 2017. cited by applicant .
Notice of Allowance for U.S. Appl. No. 14/980,338 dated Feb. 22, 2018. cited by applicant .
Notice of Allowance for U.S. Appl. No. 15/229,135 dated May 22, 2018. cited by applicant .
Notice of Allowance for U.S. Appl. No. 15/372,417 dated Dec. 7, 2018. cited by applicant .
Notice of Allowance for U.S. Appl. No. 15/441,209 dated Dec. 28, 2018. cited by applicant .
Notice of Allowance for U.S. Appl. No. 15/472,148 dated Dec. 10, 2018. cited by applicant .
Notice of Allowance for U.S. Appl. No. 15/595,919 dated Jun. 5, 2019. cited by applicant .
Notice of Allowance for U.S. Appl. No. 15/595,940 dated May 1, 2018. cited by applicant .
Notice of Allowance for U.S. Appl. No. 15/616,911 dated Jul. 24, 2019. cited by applicant .
Notice of Allowance for U.S. Appl. No. 15/904,521 dated Sep. 20, 2019. cited by applicant .
Notice of Allowance for U.S. Appl. No. 16/111,326 dated Oct. 10, 2019. cited by applicant .
Notice of Allowance for U.S. Appl. No. 16/129,423 dated Jul. 15, 2019. cited by applicant .
Notice of Allowance for U.S. Appl. No. 16/382,386 dated Jul. 24, 2019. cited by applicant .
Patent Board Decision--Examiner Affirmed for U.S. Appl. No. 13/473,144 dated Jun. 4, 2018. cited by applicant .
Patent Board Decision--Examiner Affirmed in Part for U.S. Appl. No. 13/473,160 dated Feb. 21, 2017. cited by applicant .
Patent Board Decision--Examiner Reversed for U.S. Appl. No. 13/919,932 dated Dec. 19, 2017. cited by applicant .
Restriction Requirement for U.S. Appl. No. 15/893,626 dated Aug. 12, 2016. cited by applicant .
Corrected Notice of Allowability for U.S. Appl. No. 16/111,326 dated Mar. 9, 2020. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/526,544 dated May 13, 2020. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 15/616,911 dated Jan. 24, 2020. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 15/836,198 dated May 22, 2020. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 15/904,521 dated Mar. 12, 2020. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/032,668 dated Mar. 23, 2020. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/111,326 dated Apr. 23, 2020. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/294,025 dated May 18, 2020. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/382,386 dated Feb. 6, 2020. cited by applicant .
Final Office Action for U.S. Appl. No. 15/256,222 dated Oct. 4, 2019. cited by applicant .
Final Office Action for U.S. Appl. No. 16/377,980 dated Mar. 4, 2020. cited by applicant .
Final Office Action for U.S. Appl. No. 16/388,043 dated Apr. 15, 2020. cited by applicant .
Final Office Action for U.S. Appl. No. 16/526,544 dated Feb. 12, 2020. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 15/256,222 dated Aug. 27, 2018. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 15/256,222 dated Mar. 21, 2019. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 16/125,757 dated Mar. 23, 2020. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 16/129,413 dated Feb. 12, 2020. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 16/153,735 dated May 13, 2020. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 16/364,956 dated Apr. 10, 2020. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 16/377,847 dated Apr. 20, 2020. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 16/666,680 dated Feb. 19, 2020. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 16/675,290 dated Apr. 30, 2020. cited by applicant .
Notice of Allowance for U.S. Appl. No. 15/256,222 dated Apr. 3, 2020. cited by applicant .
Notice of Allowance for U.S. Appl. No. 15/607,750 dated Jun. 1, 2020. cited by applicant .
Notice of Allowance for U.S. Appl. No. 15/836,198 dated Apr. 17, 2020. cited by applicant .
Notice of Allowance for U.S. Appl. No. 16/231,903 dated Mar. 24, 2020. cited by applicant .
Notice of Allowance for U.S. Appl. No. 16/377,980 dated Apr. 14, 2020. cited by applicant .
Notice of Allowance for U.S. Appl. No. 16/526,544 dated Apr. 9, 2020. cited by applicant .
Supplemental Notice of Allowance for U.S. Appl. No. 16/032,668 dated Feb. 14, 2020. cited by applicant .
Supplemental Notice of Allowance for U.S. Appl. No. 16/129,423 dated Mar. 3, 2020. cited by applicant .
Supplemental Notice of Allowance for U.S. Appl. No. 16/231,903 dated Apr. 30, 2020. cited by applicant .
Supplemental Notice of Allowance for U.S. Appl. No. 16/294,025 dated Mar. 25, 2020. cited by applicant .
Corrected Notice of Allowability for U.S. Appl. No. 15/256,222 dated Jul. 10, 2020. cited by applicant .
Corrected Notice of Allowability for U.S. Appl. No. 16/377,980 dated Jul. 22, 2020. cited by applicant .
Corrected Notice of Allowability for U.S. Appl. No. 16/526,544 dated Jul. 16, 2020. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/526,544 dated Aug. 25, 2020. cited by applicant .
Final Office Action for U.S. Appl. No. 16/125,757 dated Jul. 15, 2020. cited by applicant .
Final Office Action for U.S. Appl. No. 16/377,847 dated Jul. 13, 2020. cited by applicant .
Final Office Action for U.S. Appl. No. 16/666,680 dated Jun. 29, 2020. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 16/204,397 dated Sep. 17, 2020. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 16/388,043 dated Aug. 3, 2020. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 16/451,998 dated Sep. 11, 2020. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 16/452,023 dated Sep. 9, 2020. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 16/819,388 dated Jul. 2, 2020. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 16/866,536 dated Sep. 1, 2020. cited by applicant .
Notice of Allowance for U.S. Appl. No. 16/129,413 dated Aug. 12, 2020. cited by applicant .
Notice of Allowance for U.S. Appl. No. 16/153,735 dated Jul. 2, 2020. cited by applicant .
Notice of Allowance for U.S. Appl. No. 16/684,789 dated Jul. 10, 2020. cited by applicant .
Supplemental Notice of Allowability for U.S. Appl. No. 16/153,735 dated Jul. 22, 2020. cited by applicant .
Supplemental Notice of Allowance for U.S. Appl. No. 16/231,903 dated Jul. 1, 2020. cited by applicant .
Notice of Allowability for U.S. Appl. No. 16/129,413 dated Jan. 6, 2021. cited by applicant .
Corrected Notice of Allowability for U.S. Appl. No. 16/125,757 dated Mar. 11, 2021. cited by applicant .
Corrected Notice of Allowability for U.S. Appl. No. 16/204,397 dated Mar. 11, 2021. cited by applicant .
Corrected Notice of Allowability for U.S. Appl. No. 16/684,789 dated Jan. 11, 2021. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/125,757 dated Dec. 31, 2020. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/125,757 dated Feb. 1, 2021. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/364,956 dated Jan. 6, 2021. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/388,043 dated Dec. 24, 2020. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/388,043 dated Dec. 30, 2020. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/927,470 dated Feb. 2, 2021. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/927,470 dated Jan. 26, 2021. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/388,043 dated Feb. 8, 2021. cited by applicant .
International Preliminary Report on Patentability for International Application No. PCT/US2018/064184 dated Jan 21, 2021. cited by applicant .
Morgan et al., "A Same-Frequency Cellular Repeater Using Adaptive Feedback Cancellation," IEEE, Mar. 12, 2012, pp. 3825-3830. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 17/011,042 dated Mar. 23, 2021. cited by applicant .
Notice of Allowability for U.S. Appl. No. 15/607,750 dated Jan. 11, 2021. cited by applicant .
Notice of Allowability for U.S. Appl. No. 16/129,413 dated Feb. 18, 2021. cited by applicant .
Notice of Allowability for U.S. Appl. No. 16/388,043 dated Mar. 11, 2021. cited by applicant .
Notice of Allowance for U.S. Appl. No. 16/204,397 dated Jan. 12, 2021. cited by applicant .
Notice of Allowance for U.S. Appl. No. 16/354,390 dated Feb. 25, 2021. cited by applicant .
Notice of Allowance for U.S. Appl. No. 16/451,980 dated Mar. 23, 2021. cited by applicant .
Notice of Allowance for U.S. Appl. No. 16/451,998 dated Jan. 14, 2021. cited by applicant .
Notice of Allowance for U.S. Appl. No. 16/666,680 dated Mar. 2, 2021. cited by applicant .
Notice of Allowance for U.S. Appl. No. 16/689,758 dated Jan. 22, 2021. cited by applicant .
Notice of Allowance for U.S. Appl. No. 16/819,388 dated Jan. 25, 2021. cited by applicant .
Notice of Allowance for U.S. Appl. No. 16/866,536 dated Jan. 29, 2021. cited by applicant .
Supplemental Notice of Allowability for U.S. Appl. No. 16/153,735 dated Jan. 11, 2021. cited by applicant .
Supplemental Notice of Allowance for U.S. Appl. No. 16/452,023 dated Feb. 18, 2021. cited by applicant .
Supplemental Notice of Allowance for U.S. Appl. No. 16/153,735 dated Feb. 24, 2021. cited by applicant .
Supplemental Notice of Allowance for U.S. Appl. No. 16/451,998 dated Mar. 2, 2021. cited by applicant .
Supplemental Notice of Allowance for U.S. Appl. No. 16/866,536 dated Mar. 17, 2021. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/204,397 dated Apr. 28, 2021. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/204,397 dated Jun. 7, 2021. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/354,390 dated Apr. 9, 2021. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/354,390 dated Jun. 3, 2021. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/364,956 dated May 6, 2021. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/388,043 dated Apr. 15, 2021. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/689,758 dated Apr. 29, 2021. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/689,758 dated Apr. 7, 2021. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/689,758 dated May 27, 2021. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/866,536 dated Apr. 29, 2021. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/927,470 dated Apr. 26, 2021. cited by applicant .
Final Office Action for U.S. Appl. No. 16/233,044 dated Apr. 19, 2021. cited by applicant .
Final Office Action for U.S. Appl. No. 16/398,156 dated Apr. 19, 2021. cited by applicant .
Notice of Allowability for U.S. Appl. No. 16/819,388 dated Apr. 28, 2021. cited by applicant .
Notice of Allowability for U.S. Appl. No. 16/819,388 dated Apr. 5, 2021. cited by applicant .
Notice of Allowability for U.S. Appl. No. 16/819,388 dated May 27, 2021. cited by applicant .
Notice of Allowance for U.S. Appl. No. 16/233,044 dated Jun. 4, 2021. cited by applicant .
Notice of Allowance for U.S. Appl. No. 16/377,847 dated Apr. 5, 2021. cited by applicant .
Notice of Allowance for U.S. Appl. No. 16/388,043 dated May 7, 2021. cited by applicant .
Notice of Allowance for U.S. Appl. No. 16/941,690 dated May 5, 2021. cited by applicant .
Supplemental Notice of Allowance for U.S. Appl. No. 16/451,980 dated May 18, 2021. cited by applicant .
Supplemental Notice of Allowance for U.S. Appl. No. 16/451,998 dated May 18, 2021. cited by applicant .
Supplemental Notice of Allowance for U.S. Appl. No. 16/452,023 dated Apr. 30, 2021. cited by applicant .
Supplemental Notice of Allowance for U.S. Appl. No. 16/666,680 dated Jun. 10, 2021. cited by applicant .
Supplemental Notice of Allowance for U.S. Appl. No. 16/866,536 dated Jun. 7, 2021. cited by applicant .
Supplemental Notice of Allowance for U.S. Appl. No. 16/941,690 dated May 18, 2021. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/125,757 dated Jul. 16, 2021. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/125,757 dated Jun. 28, 2021. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/354,390 dated Jul. 13, 2021. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/364,956 dated Jun. 23, 2021. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/377,847 dated Jul. 13, 2021. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/377,847 dated Jul. 6, 2021. cited by applicant .
Corrected Notice of Allowance for U.S. Appl. No. 16/689,758 dated Jul. 6, 2021. cited by applicant .
Final Office Action for U.S. Appl. No. 17/011,042 dated Jul. 2, 2021. cited by applicant .
Non-Final Office Action for U.S. Appl. No. 17/091,520 dated Jul. 8, 2021. cited by applicant .
Notice of Allowance for U.S. Appl. No. 16/398,156 dated Jul. 6, 2021. cited by applicant .
Supplemental Notice of Allowance for U.S. Appl. No. 16/451,980 dated Jun. 30, 2021. cited by applicant .
Supplemental Notice of Allowance for U.S. Appl. No. 16/451,998 dated Jun. 24, 2021. cited by applicant .
Supplemental Notice of Allowance for U.S. Appl. No. 16/666,680 dated Jul. 9, 2021. cited by applicant .
Supplemental Notice of Allowance for U.S. Appl. No. 16/866,536 dated Jul. 21, 2021. cited by applicant.

Primary Examiner: Tran; Binh B
Attorney, Agent or Firm: Chip Law Group


ТЕКСТ РЕШЕНИЯ-ПРЕЦЕДЕНТА




ПЕРЕКРЕСТНАЯ ССЫЛКА НА РОДСТВЕННЫЕ ЗАЯВКИ / ВКЛЮЧЕНИЕ ПО ССЫЛКЕ

This Patent Application makes reference to, claims priority to, claims the benefit of, and is a Continuation Application of U.S. patent application Ser. No. 15/904,521, filed Feb. 26, 2018.

This Application makes reference to: U.S. application Ser. No. 15/607,743, which was filed on May 30, 2017; and U.S. application Ser. No. 15/834,894, which was filed on Dec. 7, 2017.

Each of the above referenced Application is hereby incorporated herein by reference in its entirety.


ФОРМУЛА ИЗОБРЕТЕНИЯ




What is claimed is:

1. An antenna system, comprising: a first substrate; a plurality of chips; and a waveguide antenna element based beam forming phased array that comprises a plurality of radiating waveguide antenna cells for millimeter wave communication, wherein each radiating waveguide antenna cell comprises a plurality of pins that are connected with a body of a corresponding radiating waveguide antenna cell, wherein the body of the corresponding radiating waveguide antenna cell corresponds to ground for the plurality of pins, and wherein the plurality of chips are electrically connected with the plurality of pins and the ground of each of the plurality of radiating waveguide antenna cells to control beamforming through a second end of the plurality of radiating waveguide antenna cells for the millimeter wave communication.

2. The antenna system according to claim 1, wherein the waveguide antenna element based beam forming phased array is a one-piece structure of four-by-four waveguide array comprising sixteen radiating waveguide antenna cells, wherein the one-piece structure of four-by-four waveguide array corresponds to a unitary body of the waveguide antenna element based beam forming phased array.

3. The antenna system according to claim 1, wherein the waveguide antenna element based beam forming phased array is a one-piece structure of eight-by-eight waveguide array comprising sixty four radiating waveguide antenna cells, wherein the one-piece structure of eight-by-eight waveguide array corresponds to a unitary body of the waveguide antenna element based beam forming phased array.

4. The antenna system according to claim 1, wherein the waveguide antenna element based beam forming phased array is a one-piece structure of N-by-N waveguide array comprising M number of radiating waveguide antenna cells, wherein N is a positive integer and M is N to the power of 2.

5. The antenna system according to claim 1, wherein the waveguide antenna element based beam forming phased array further comprises a plurality of non-radiating dummy waveguide antenna cells, wherein the plurality of non-radiating dummy waveguide antenna cells are at edge regions surrounding the plurality of radiating waveguide antenna cells to enable even radiation for the millimeter wave communication through the second end of each of the plurality of radiating waveguide antenna cells irrespective of positioning of the plurality of radiating waveguide antenna cells.

6. The antenna system according to claim 5, further comprising a second substrate, wherein the plurality of non-radiating dummy waveguide antenna cells are on the second substrate that is different than the first substrate.

7. The antenna system according to claim 1, further comprising a system board having an upper surface and a lower surface, wherein the upper surface of the system board comprises a plurality of electrically conductive connection points to connect to the ground of each of the plurality of radiating waveguide antenna cells of the waveguide antenna element based beam forming phased array using electrically conductive wiring connections that passes through the first substrate, wherein the first substrate is between the waveguide antenna element based beam forming phased array and the system board.

8. The antenna system according to claim 7, further comprising a heat sink that is attached to the lower surface of the system board, wherein the heat sink comprises a plurality of protrusions, wherein the plurality of protrusions of the heat sink passes through a plurality of perforations in the system board such that the plurality of chips are in contact to the plurality of protrusions of the heat sink to dissipate heat from the plurality of chips through the heat sink.

9. The antenna system according to claim 7, wherein the first substrate comprises an upper side and a lower side, wherein the first end of the plurality of radiating waveguide antenna cells of the waveguide antenna element based beam forming phased array is on the upper side of the first substrate, and the plurality of chips are between the lower side of the first substrate and the upper surface of the system board.

10. The antenna system according to claim 1, wherein the first substrate comprises an upper side and a lower side, wherein the plurality of chips and the plurality of radiating waveguide antenna cells of the waveguide antenna element based beam forming phased array are on the upper side of the first substrate.

11. The antenna system according to claim 10, wherein a vertical length between the plurality of chips and the first end of the plurality of radiating waveguide antenna cells of the waveguide antenna element based beam forming phased array is less than a defined threshold to reduce insertion loss between the plurality of radiating waveguide antenna cells of the waveguide antenna element based beam forming phased array and the plurality of chips, and wherein the insertion loss between the plurality of radiating waveguide antenna cells of the waveguide antenna element based beam forming phased array and the plurality of chips is based on positioning of the plurality of radiating waveguide antenna cells of the waveguide antenna element based beam forming phased array and the plurality of chips on a same side of the first substrate.

12. The antenna system according to claim 10, wherein the body of the waveguide antenna element based beam forming phased array has a metallic electrically conductive surface, wherein the body of the waveguide antenna element based beam forming phased array comprises a heat sink to dissipate heat from the plurality of chips to atmospheric air through the metallic electrically conductive surface of the waveguide antenna element based beam forming phased array, and wherein the heat from the plurality of chips to the atmospheric air is dissipated based on a contact of the plurality of chips with the plurality of radiating waveguide antenna cells of the waveguide antenna element based beam forming phased array on the upper side of the first substrate.

13. The antenna system according to claim 1, wherein the plurality of pins in each radiating waveguide antenna cell are protrude pins that protrude from the first end from a level of the body of the corresponding radiating waveguide antenna cell to establish a firm contact with the first substrate.

14. The antenna system according to claim 1, the waveguide antenna element based beam forming phased array is a dual-polarized open waveguide array antenna configured to transmit and receive radio frequency waves for the millimeter wave communication in horizontal polarization and vertical polarization or as left hand circular polarization (LHCP) or right hand circular polarization (RHCP).

15. The antenna system according to claim 1, wherein the plurality of pins in each radiating waveguide antenna cell includes a pair of vertical polarization pins and a pair of horizontal polarization pins, wherein the pair of vertical polarization pins comprise a first positive terminal and a first negative terminal and the pair of horizontal polarization pins comprise a second positive terminal and a second negative terminal, and wherein the pair of vertical polarization pins and the pair of horizontal polarization pins are utilized for dual-polarization.

16. The antenna system according to claim 1, wherein the plurality of chips comprises a set of receiver (Rx) chips, a set of transmitter (Tx) chips, and a signal mixer chip.

17. The antenna system according to claim 1, wherein the plurality of chips are configured to control propagation and a direction of a radio frequency (RF) beam in millimeter wave frequency through the second end of the plurality of radiating waveguide antenna cells for the millimeter wave communication between the antenna system and a millimeter wave-based communication device, and wherein the second end is an open end of the plurality of radiating waveguide antenna cells for the millimeter wave communication.

18. The antenna system according to claim 17, wherein the propagation of the radio frequency (RF) beam in millimeter wave frequency is controlled based on at least a flow of current in each radiating waveguide antenna cell, wherein the current flows from the ground towards a negative terminal of a first chip of the plurality of chips via at least a first pin of the plurality of pins in each corresponding radiating waveguide antenna cell of the plurality of radiating waveguide antenna cells, and wherein the current flows from a positive terminal of the first chip towards the ground via at least a second pin of the plurality of pins in each corresponding radiating waveguide antenna cell of the plurality of radiating waveguide antenna cells.

19. The antenna system according to claim 1, further comprising an interposer beneath the edge regions of the waveguide antenna element based beam forming phased array at the first end to shield radiation leakage from the first end of the plurality of radiating waveguide antenna cells of the waveguide antenna element based beam forming phased array.

20. The antenna system according to claim 1, further comprising a ground (gnd) layer between the first end of the plurality of radiating waveguide antenna cells of the waveguide antenna element based beam forming phased array and the first substrate to minimize ground loop noise from the ground of each radiating waveguide antenna cell of the plurality of the radiating waveguide antenna cells of the waveguide antenna element based beam forming phased array.


ОПИСАНИЕ




ОБЛАСТЬ ТЕХНИКИ

Certain embodiments of the disclosure relate to an antenna system for millimeter wave-based wireless communication. More specifically, certain embodiments of the disclosure relate to a waveguide antenna element based beam forming phased array antenna system for millimeter wave communication.

ИСТОРИЯ ВОПРОСА

Wireless telecommunication in modern times has witnessed advent of various signal transmission techniques, systems, and methods, such as use of beam forming and beam steering techniques, for enhancing capacity of radio channels. For the advanced high-performance fifth generation communication networks, such as millimeter wave communication, there is a demand for innovative hardware systems, and technologies to support millimeter wave communication in effective and efficent manner. Current antenna systems or antenna arrays, such as phased array antenna or TEM antenna, that are capable of supporting millimeter wave communication comprise multiple radiating antenna elements spaced in a grid pattern on a flat or curved surface of communication elements, such as transmitters and receivers. Such antenna arrays may produce a beam of radio waves that may be electronically steered to desired directions, without physical movement of the antennas. A beam may be formed by adjusting time delay and/or shifting the phase of a signal emitted from each radiating antenna element, so as to steer the beam in the desired direction. Although some of the existing antenna arrays exhibit low loss, however, mass production of such antenna arrays that comprise multiple antenna elements may be difficult and pose certain practical and technical challenges. For example, the multiple antenna elements (usually more than hundred) in an antenna array, needs to be soldered on a substrate during fabrication, which may be difficult and a time-consuming process. This adversely impacts the total cycle time to produce an antenna array. Further, assembly and packaging of such large sized antenna arrays may be difficult and cost intensive task. Thus, an advanced antenna system may be desirable that may be cost-effective, easy to fabricate, assemble, and capable of millimeter wave communication in effective and efficent manner.

Further limitations and disadvantages of conventional and traditional approaches will become apparent to one of skill in the art, through comparison of such systems with some aspects of the present disclosure as set forth in the remainder of the present application with reference to the drawings.

КРАТКОЕ РЕЗЮМЕ ИЗОБРЕТЕНИЯ

A waveguide antenna element based beam forming phased array antenna system for millimeter wave communication, substantially as shown in and/or described in connection with at least one of the figures, as set forth more completely in the claims.

These and other advantages, aspects and novel features of the present disclosure, as well as details of an illustrated embodiment thereof, will be more fully understood from the following description and drawings.

КРАТКОЕ ОПИСАНИЕ ЧЕРТЕЖЕЙ

FIG. 1A depicts a perspective top view of an exemplary waveguide antenna element based beam forming phased array antenna system for millimeter wave communication, in accordance with an exemplary embodiment of the disclosure.

FIG. 1B depicts a perspective bottom view of the exemplary waveguide antenna element based beam forming phased array antenna system of FIG. 1A, in accordance with an exemplary embodiment of the disclosure.

FIG. 2A depicts a perspective top view of an exemplary radiating waveguide antenna cell of the exemplary waveguide antenna element based beam forming phased array antenna system of FIG. 1A, in accordance with an exemplary embodiment of the disclosure.

FIG. 2B depicts a perspective bottom view of the exemplary radiating waveguide antenna cell of FIG. 2A, in accordance with an exemplary embodiment of the disclosure.

FIG. 3A depicts a schematic top view of an exemplary radiating waveguide antenna cell of the exemplary waveguide antenna element based beam forming phased array antenna system of FIG. 1A, in accordance with an exemplary embodiment of the disclosure.

FIG. 3B depicts a schematic bottom view of an exemplary radiating waveguide antenna cell of the exemplary waveguide antenna element based beam forming phased array antenna system for millimeter wave communication of FIG. 1A, in accordance with an exemplary embodiment of the disclosure.

FIG. 4 illustrates an exemplary antenna system that depicts a cross-sectional side view of the exemplary radiating waveguide antenna cell of FIG. 2A mounted on a first substrate, in accordance with an exemplary embodiment of the disclosure.

FIG. 5A illustrates various components of a first exemplary antenna system, in accordance with an exemplary embodiment of the disclosure.

FIG. 5B illustrates various components of a second exemplary antenna system, in accordance with an exemplary embodiment of the disclosure.

FIG. 6 illustrates radio frequency (RF) routings from a chip to an exemplary radiating waveguide antenna cell in the first exemplary antenna system of FIG. 5A, in accordance with an exemplary embodiment of the disclosure.

FIG. 7 illustrates protrude pins of an exemplary radiating waveguide antenna cell of an exemplary waveguide antenna array in an antenna system, in accordance with an exemplary embodiment of the disclosure.

FIG. 8 illustrates a perspective bottom view of the exemplary waveguide antenna element based beam forming phased array antenna system of FIG. 1A integrated with a first substate and a plurality of chips, and mounted on a board in an antenna system, in accordance with an exemplary embodiment of the disclosure.

FIG. 9 illustrates beamforming on an open end of the exemplary waveguide antenna element based beam forming phased array antenna system of FIG. 1A in the first exemplary antenna system of FIG. 5, in accordance with an exemplary embodiment of the disclosure.

FIG. 10 depicts a perspective top view of an exemplary four-by-four waveguide antenna element based beam forming phased array antenna system with dummy elements, in accordance with an exemplary embodiment of the disclosure.

FIG. 11 illustrates various components of a third exemplary antenna system, in accordance with an exemplary embodiment of the disclosure.

FIG. 12 depicts a perspective top view of an exemplary eight-by-eight waveguide antenna element based beam forming phased array antenna system with dummy elements, in accordance with an exemplary embodiment of the disclosure.

FIG. 13 illustrates various components of a fourth exemplary antenna system, in accordance with an exemplary embodiment of the disclosure.

FIG. 14 illustrates positioning of an interposer in an exploded view of an exemplary four-by-four waveguide antenna element based beam forming phased array antenna system module, in accordance with an exemplary embodiment of the disclosure.

FIG. 15 illustrates the interposer of FIG. 14 in an affixed state in an exemplary four-by-four waveguide antenna element based beam forming phased array antenna system module, in accordance with an exemplary embodiment of the disclosure.

FIG. 16 illustrates various components of a fifth exemplary antenna system, in accordance with an exemplary embodiment of the disclosure.

ПОДРОБНОЕ ОПИСАНИЕ ИЗОБРЕТЕНИЯ

Certain embodiments of the disclosure may be found in a waveguide antenna element based beam forming phased array antenna system for millimeter wave communication. In the following description, reference is made to the accompanying drawings, which form a part hereof, and in which is shown, by way of illustration, various embodiments of the present disclosure.

FIG. 1A depicts a perspective top view of an exemplary waveguide antenna element based beam forming phased array antenna system for millimeter wave communication, in accordance with an exemplary embodiment of the disclosure. With reference to FIG. 1A, there is shown a waveguide antenna element based beam forming phased array 100A. The waveguide antenna element based beam forming phased array 100A may have a unitary body that comprises a plurality of radiating waveguide antenna cells 102 arranged in a certain layout for millimeter wave communication. The unitary body refers to one-piece structure of the waveguide antenna element based beam forming phased array 100A, where multiple antenna elements, such as the plurality of radiating waveguide antenna cells 102 may be fabricated as a single piece structure, for example, by metal processing or injection moulding. In FIG. 1A, an example of four-by-four waveguide array comprising sixteen radiating waveguide antenna cells, such as a radiating waveguide antenna cell 102A, in a first layout, is shown. In some embodiments, the waveguide antenna element based beam forming phased array 100A may be one-piece structure of eight-by-eight waveguide array comprising sixty four radiating waveguide antenna cells in the first layout. It is to be understood by one of ordinary skill in the art that the number of radiating waveguide antenna cells may vary, without departure from the scope of the present disclosure. For example, the waveguide antenna element based beam forming phased array 100A may be one-piece structure of N-by-N waveguide array comprising "M" number of radiating waveguide antenna cells arranged in certain layout, wherein "N" is a positive integer and "M" is N to the power of 2.

In some embodiments, the waveguide antenna element based beam forming phased array 100A may be made of electrically conductive material, such as metal. For example, the waveguide antenna element based beam forming phased array 100A may be made of copper, aluminum, or mettalic alloy that are considered good electrical conductors. In some embodiments, the waveguide antenna element based beam forming phased array 100A may be made of plastic and coated with electrically conductive material, such as metal, for mass production. The exposed or outer surface of the waveguide antenna element based beam forming phased array 100A may be coated with electrically conductive material, such as metal, whereas the inner body may be plastic or other inexpensive polymeric substance. The waveguide antenna element based beam forming phased array 100A may be surface coated with copper, aluminum, silver, and the like. Thus, the waveguide antenna element based beam forming phased array 100A may be cost-effective and capable of mass production as a result of the unitary body structure of the waveguide antenna element based beam forming phased array 100A. In some embodiments, the waveguide antenna element based beam forming phased array 100A may be made of optical fibre for enhanced conduction in the millimeter wave frequency.

FIG. 1B depicts a perspective bottom view of the exemplary waveguide antenna element based beam forming phased array antenna system of FIG. 1A, in accordance with an exemplary embodiment of the disclosure. With reference to FIG. 1B, there is shown a bottom view of the waveguide antenna element based beam forming phased array 100A that depicts a plurality of pins (e.g. four pins in this case) in each radiating waveguide antenna cell (such as the radiating waveguide antenna cell 102A) of the pluraity of radiating waveguide antenna cells 102. The plurality of pins of each corresponding radiating waveguide antenna cell are connected with a body of a corresponding radiating waveguide antenna cell that acts as ground for the plurality of pins. In other words, the plurality of pins of each corresponding radiating waveguide antenna are conncted with each other by the ground resulting in the unitary body structure.

FIG. 2A depicts a perspective top view of an exemplary radiating waveguide antenna cell of the exemplary waveguide antenna element based beam forming phased array antenna system of FIG. 1A, in accordance with an exemplary embodiment of the disclosure. With reference to FIG. 2A, there is shown a perspective top view of an exemplary single radiating waveguide antenna cell, such as the radiating waveguide antenna cell 102A of FIG. 1A. There is shown an open end 202 of the radiating waveguide antenna cell 102A. There is also shown an upper end 204 of a plurality of pins 206 that are connected with a body of the radiating waveguide antenna cell 102A. The body of the radiating waveguide antenna cell 102A acts as ground 208.

FIG. 2B depicts a perspective bottom view of the exemplary radiating waveguide antenna cell of FIG. 2A, in accordance with an exemplary embodiment of the disclosure. With reference to FIG. 2B, there is shown a bottom view of the radiating waveguide antenna cell 102A of FIG. 2A. There is shown a first end 210 of the radiating waveguide antenna cell 102A, which depicts a lower end 212 of the plurality of pins 206 that are connected with the body (i.e., ground 208) of the radiating waveguide antenna cell 102A. The plurality of pins 206 may be protrude pins that protrude from the first end 210 from a level of the body of the radiating waveguide antenna cell 102A to establish a firm contact with a substrate on which the plurality of radiating waveguide antenna cells 102 (that includes the radiating waveguide antenna cell 102A) may be mounted.

FIG. 3A depicts a schematic top view of an exemplary radiating waveguide antenna cell of the exemplary waveguide antenna element based beam forming phased array antenna system of FIG. 1A, in accordance with an exemplary embodiment of the disclosure. With reference to FIG. 3A, there is shown the open end 202 of the radiating waveguide antenna cell 102A, the upper end 204 of the plurality of pins 206 that are connected with the body (i.e., ground 208) of the radiating waveguide antenna cell 102A. The body of the radiating waveguide antenna cell 102A acts as the ground 208. The open end 202 of the radiating waveguide antenna cell 102A represents a flat four-leaf like hollow structure surrounded by the ground 208.

FIG. 3B depicts a schematic bottom view of an exemplary radiating waveguide antenna cell of the exemplary waveguide antenna element based beam forming phased array antenna system of FIG. 1A, in accordance with an exemplary embodiment of the disclosure. With reference to FIG. 3B, there is shown a schematic bottom view of the radiating waveguide antenna cell 102A of FIG. 2B. There is shown the first end 210 of the radiating waveguide antenna cell 102A. The first end 210 may be the lower end 212 of the plurality of pins 206 depicting positive and negative terminals. The plurality of pins 206 in the radiating waveguide antenna cell 102A includes a pair of vertical polarization pins 302a and 302b that acts as a first positive terminal and a first negative terminal. The plurality of pins 206 in the radiating waveguide antenna cell 102A further includes a pair of horizontal polarization pins 304a and 304b that acts as a second positive terminal and a second negative terminal. The pair of vertical polarization pins 302a and 302b and the pair of horizontal polarization pins 304a and 304b are utilized for dual-polarization. Thus, the waveguide antenna element based beam forming phased array 100A may be a dual-polarized open waveguide array antenna configured to transmit and receive radio frequency (RF) waves for the millimeter wave communication in both horizontal and vertical polarizations. In some embodiements, the waveguide antenna element based beam forming phased array 100A may be a dual-polarized open waveguide array antenna configured to transmit and receive radio frequency (RF) waves in also left hand circular polarization (LHCP) or right hand circular polarization (RHCP), known in the art. The circular polarization is known in the art, where an electromagnetic wave is in a polarization state, in which electric field of the electromagnetic wave exhibits a constant magnitude. However, the direction of the electromagnetic wave may rotate with time at a steady rate in a plane perpendicular to the direction of the electromagnetic wave.

FIG. 4 illustrates an exemplary antenna system that depicts a cross-sectional side view of the exemplary radiating waveguide antenna cell of FIG. 2A mounted on a substrate, in accordance with an exemplary embodiment of the disclosure. With reference to FIG. 4, there is shown a cross-sectional side view of the ground 208 and two pins, such as the first pair of horizontal polarization pins 304a and 304b, of the radiating waveguide antenna cell 102A. There is also shown a first substrate 402, a chip 404, a plurality of connection ports 406 provided on the chip 404. The plurality of connection ports 406 may include at least a negative terminal 406a and a positive terminal 406b. There is further shown electrically conductive routing connections 408a, 408b, 408c, and 408d, from the plurality of connection ports 406 of the chip 404 to the waveguide antenna, such as the first pair of horizontal polarization pins 304a and 304b and the ground 208. There is also shown a radio frequency (RF) wave 410 radiated from the open end 202 of the radiating waveguide antenna cell 102A.

As the first pair of horizontal polarization pins 304a and 304b protrude slightly from the first end 210 from the level of the body (i.e., the ground 208) of the radiating waveguide antenna cell 102A, a firm contact with the first substrate 402 may be established. The first substrate 402 comprises an upper side 402A and a lower side 402B. The first end 210 of the plurality of radiating waveguide antenna cells 102, such as the radiating waveguide antenna cell 102A, of the waveguide antenna element based beam forming phased array 100A may be mounted on the upper side 402A of the first substrate 402. Thus, the waveguide antenna element based beam forming phased array 100A may also be reffered to as a surface mount open waveguide antenna. In some embodiments, the chip 404 may be positioned beneath the lower side 402B of the first substrate 402. In operation, the current may flow from the ground 208 towards the negative terminal 406a of the chip 404 through at least a first pin (e.g., the pin 304b of the first pair of horizontal polarization pins 304a and 304b), and the electrically conductive connection 408a. Similarly, the current may flow from the positive terminal 406b of the chip 404 towards the ground 208 through at least a second pin (e.g., the pin 304a of the first pair of horizontal polarization pins 304a and 304b) of the plurality of pins 206 in the radiating waveguide antenna cell 102A. This forms a closed circuit, where the flow of current in the opposite direction in closed circuit within the radiating waveguide antenna cell 102A in at least one polarization creates a magnetic dipole and differential in at least two electromagnetic waves resulting in propogation of the RF wave 410 via the open end 202 of the radiating waveguide antenna cell 102A. The chip 404 may be configured to form a RF beam and further control the propagation and a direction of the RF beam in millimeter wave frequency through the open end 202 of each radiating waveguide antenna cell by adjusting signal parameters of RF signal (i.e. the radiated RF wave 410) emitted from each radiating waveguide antenna cell of the plurality of radiating waveguide antenna cells 102.

FIG. 5A illustrates various components of a first exemplary antenna system, in accordance with an exemplary embodiment of the disclosure. With reference to FIG. 5A, there is shown a cross-sectional side view of an antenna system 500A. The antenna system 500A may comprise the first substrate 402, a plurality of chips 502, a main system board 504, and a heat sink 506. There is further shown a cross-sectional side view of the waveguide antenna element based beam forming phased array 100A in two dimension (2D).

In accordance with an embodiment, a first end 508 of a set of radiating waveguide antenna cells 510 of the waveguide antenna element based beam forming phased array 100A (as the unitary body) may be mounted on the first substrate 402. For example, in this case, the first end 508 of the set of radiating waveguide antenna cells 510 of the waveguide antenna element based beam forming phased array 100A is mounted on the upper side 402A of the first substrate 402. The plurality of chips 502 may be positioned between the lower side 402B of the first substrate 402 and the upper surface 504A of the system board 504. The set of radiating waveguide antenna cells 510 may correspond to certain number of radiating waveguide antenna cells, for example, four radiating waveguide antenna cells, of the plurality of radiating waveguide antenna cells 102 (FIG. 1A) shown in the side view. The plurality of chips 502 may be electrically connected with the plurality of pins (such as pins 512a to 512h) and the ground (ground 514a to 514d) of each of the set of radiating waveguide antenna cells 510 to control beamforming through a second end 516 of each of the set of radiating waveguide antenna cells 510 for the millimeter wave communication. Each of the plurality of chips 502 may include a plurality of connection ports (similar to the plurality of connection ports 406 of FIG. 4). The plurality of connection ports may include a plurality of negative terminals and a plurality of positive terminals (represented by "+" and "-" charges). A plurality of electrically conductive routing connections (represented by thick lines) are provided from the plurality of connection ports of the plurality of chips 502 to the waveguide antenna elements, such as the pins 512a to 512h and the ground 514a to 514d of each of the set of radiating waveguide antenna cells 510.

In accordance with an embodiment, the system board 504 includes an upper surface 504A and a lower surface 504B. The upper surface 504A of the system board 504 comprises a plurality of electrically conductive connection points 518 (e.g., solder balls) to connect to the ground (e.g., the ground 514a to 514d) of each of set of radiating waveguide antenna cells 510 of the waveguide antenna element based beam forming phased array 100A using electrically conductive wiring connections 520 that passes through the first substrate 402. The first substrate 402 may be positioned between the waveguide antenna element based beam forming phased array 100A and the system board 504.

In accordance with an embodiment, the heat sink 506 may be attached to the lower surface 504B of the system board 504. The heat sink may have a comb-like structure in which a plurality of protrusions (such as protrusions 506a and 506b) of the heat sink 506 passes through a plurality of perforations in the system board 504 such that the plurality of chips 502 are in contact to the plurality of protrusions (such as protrusions 506a and 506b) of the heat sink 506 to dissipate heat from the plurality of chips 502 through the heat sink 506.

FIG. 5B illustrates various components of a second exemplary antenna system, in accordance with an exemplary embodiment of the disclosure. With reference to FIG. 5B, there is shown a cross-sectional side view of an antenna system 500B that depicts a cross-sectional side view of the waveguide antenna element based beam forming phased array 100A in 2D. The antenna system 500B may comprise the first substrate 402, the plurality of chips 502, the main system board 504, and other elements as described in FIG. 5A except a dedicated heat sink (such as the heat sink 506 of FIG. 5A).

In some embodiments, as shown in FIG. 5B, the plurality of chips 502 may be on the upper side 402A of the first substrate 402 (instead of the lower side 402B as shown in FIG. 5A). Thus, the plurality of chips 502 and the plurality of radiating waveguide antenna cells 102 (such as the set of radiating waveguide antenna cells 510) of the waveguide antenna element based beam forming phased array 100A may be positioned on the upper side 402A of the first substrate 402. Alternatively stated, the plurality of chips 502 and and the waveguide antenna element based beam forming phased array 100A may lie on the same side (i.e., the upper side 402A) of the first substrate 402. Such positioning of the plurality of radiating waveguide antenna cells 102 of the waveguide antenna element based beam forming phased array 110A and the plurality of chips 502 on a same side of the first substrate 402, is advantagoues, as insertion loss (or routing loss) between the first end 508 of the plurality of radiating waveguide antenna cells of the waveguide antenna element based beam forming phased array 110A and the plurality of chips 502 is reduced to minimum. Further, when the plurality of chips 502 and and the waveguide antenna element based beam forming phased array 100A are present on the same side (i.e., the upper side 402A) of the first substrate 402, the plurality of chips 502 are in physical contact to the waveguide antenna element based beam forming phased array 100A. Thus, the unitary body of the waveguide antenna element based beam forming phased array 100A that has a metallic electrically conductive surface acts as a heat sink to dissipate heat from the plurality of chips 502 to atmospheric air through the metallic electrically conductive surface of the waveguide antenna element based beam forming phased array 110A. Therefore, no dedicated metallic heat sink (such as the heat sink 506), may be required, which is cost-effective. The dissipation of heat may be based on a direct and/or indirect contact (through electrically conductive wiring connections) of the plurality of chips 502 with the plurality of radiating waveguide antenna cells of the waveguide antenna element based beam forming phased array 110A on the upper side 402A of the first substrate 402.

FIG. 6 illustrates radio frequency (RF) routings from a chip to an exemplary radiating waveguide antenna cell in the first exemplary antenna system of FIG. 5, in accordance with an exemplary embodiment of the disclosure. With reference to FIG. 6, there is shown a plurality of vertical routing connections 602 and a plurality of horizontal routing connections 604. The plurality of vertical routing connections 602 from the plurality of connection ports 606 provided on a chip (such as the chip 404 or one of the plurality of chips 502) are routed to a lower end 608 of a plurality of pins 610 of each radiating waveguide antenna cell. The plurality of pins 610 may correspond to the pluraity of pins 206 of FIG. 2B.

In accordance with an embodiment, a vertical length 612 between the chip (such as the chip 404 or one of the plurality of chips 502) and a first end of each radiating waveguide antenna cell (such as the first end 210 of the radiating waveguide antenna cell 102A) of the plurality of radiating waveguide antenna cells 102, defines an amount of routing loss between each chip and the first end (such as the first end 210) of each radiating waveguide antenna cell. The first end of each radiating waveguide antenna cell (such as the first end 210 of the radiating waveguide antenna cell 102A) includes the lower end 608 of the plurality of pins 610 and the ground at the first end. When the vertical length 612 reduces, the amount of routing loss also reduces, whereas when the vertical length 612 increases, the amount of routing loss also increases. In other words, the amount of routing loss is directly proportional to the vertical length 612. Thus, in FIG. 5B, based on the positioning of the plurality of chips 502 and and the waveguide antenna element based beam forming phased array 100A on the same side (i.e., the upper side 402A) of the first substrate 402, the vertical length 612 is negligible or reduced to minimum between the plurality of chips 502 and the first end 508 of the plurality of radiating waveguide antenna cells of the waveguide antenna element based beam forming phased array 110A. The vertical length 612 may be less than a defined threshold to reduce insertion loss (or routing loss) for RF signals or power between the first end of each radiating waveguide antenna cell and the plurality of chips 502.

In FIG. 6, there is further shown a first positive terminal 610a and a first negative terminal 610b of a pair of vertical polarization pins of the plurality of pins 610. There is also shown a second positive terminal 610c and a second negative terminal 610d of a pair of horizontal polarization pins (such as the pins 512b and 512c of FIG. 5) of the plurality of pins 610. The positive and negative terminals of the plurality of connection ports 606 may be connected to a specific pin of specific and same polarization (as shown), to facilitate dual-polarization.

FIG. 7 illustrates protrude pins of an exemplary radiating waveguide antenna cell of an exemplary waveguide antenna element based beam forming phased array in an antenna system, in accordance with an exemplary embodiment of the disclosure. With reference to FIG. 7, there is shown a plurality of protrude pins 702 that slightly protrudes from a level of the body 704 of a radiating waveguide antenna cell of the waveguide antenna element based beam forming phased array 100A. The plurality of protrude pins 702 corresponds to the plurality of pins 206 (FIG. 2B) and the pins 512a to 512h (FIG. 5). The body 704 corresponds to the ground 208 (FIGS. 2A and 2B) and the ground 514a to 514d (FIG. 5). The plurality of protrude pins 702 in each radiating waveguide antenna cell of the plurality of radiating waveguide antenna cells 102 advantageously secures a firm contact of each radiating waveguide antenna cell with the first substrate 402 (FIGS. 4 and 5).

FIG. 8 illustrates a perspective bottom view of the exemplary waveguide antenna element based beam forming phased array antenna system of FIG. 1A integrated with a first substate and a plurality of chips and mounted on a board in an antenna system, in accordance with an exemplary embodiment of the disclosure. With reference to FIG. 8, there is shown the plurality of chips 502 connected to the lower side 402B of the first substrate 402. The plurality of chips 502 may be electrically connected with the plurality of pins (such as pins 512a to 512h) and the ground (ground 514a to 514d) of each of the plurality of radiating waveguide antenna cells 102. For example, in this case, each chip of the plurality of chips 502 may be connected to four radiating waveguide antenna cells of the plurality of radiating waveguide antenna cells 102, via a plurality of vertical routing connections and a plurality of horizontal routing connections. An example of the plurality of vertical routing connections 602 and the plurality of horizontal routing connections 604 for one radiating waveguide antenna cell (such as the radiating waveguide antenna cell 102A) has been shown and described in FIG. 6. The plurality of chips 502 may be configured to control beamforming through a second end (e.g., the open end 202 or the second end 516) of each radiating waveguide antenna cell of the plurality of radiating waveguide antenna cells 102 for the millimeter wave communication. The integrated assemby of the waveguide antenna element based beam forming phased array 100A with the first substate 402 and the plurality of chips 502 may be mounted on a board 802 (e.g., an printed circuit board or an evaluation board) for quality control (QC) testing and to provide a modular arrangement that is easy-to-install.

FIG. 9 illustrates beamforming on an open end of the exemplary waveguide antenna element based beam forming phased array antenna system of FIG. 1A in the first exemplary antenna system of FIG. 5A or 5B, in accordance with an exemplary embodiment of the disclosure. With reference to FIG. 9, there is show a main lobe 902 of a RF beam and a plurality of side lobes 904 radiating from an open end 906 of each radiating waveguide antenna cell of the plurality of radiating waveguide antenna cells 102 of the waveguide antenna element based beam forming phased array 100A. The plurality of chips 502 may be configured to control beamforming through the open end 906 of each radiating waveguide antenna cell of the plurality of radiating waveguide antenna cells 102 for the millimeter wave communication. The plurality of chips 502 may include a set of receiver (Rx) chips, a set of transmitter (Tx) chips, and a signal mixer chip. In some implementation, among the plurality of chips 502, two or more chips (e.g. chips 502a, 502b, 502c, and 502d) may be the set of Rx chips and the set of Tx chips, and at least one chip (e.g. the chip 502e) may be the signal mixer chip. In some embodiments, each of the set of Tx chips may comprise various circuits, such as a transmitter (Tx) radio frequency (RF) frontend, a digital to analog converter (DAC), a power amplifier (PA), and other miscellaneous components, such as filters (that reject unwanted spectral components) and mixers (that modulates a frequency carrier signal with an oscillator signal). In some embodiments, each of the set of Rx chips may comprise various circuits, such as a receiver (Rx) RF frontend, an analog to digital converter (ADC), a low noise amplifier (LNA), and other miscellaneous components, such as filters, mixers, and frequency generators. The plurality of chips 502 in conjuction with the waveguide antenna element based beam forming phased array 100A of the antenna system 500A or 500B may be configured to generate extremely high frequency (EHF), which is the band of radio frequencies in the electromagnetic spectrum from 30 to 300 gigahertz. Such radio frequencies have wavelengths from ten to one millimeter, referred to as millimetre wave (mmW).

In accordance with an embodiment, the plurality of chips 502 are configured to control propagation, a direction and angle (or tilt, such as 18, 22.5 or 45 degree tilt) of the RF beam (e.g. the main lobe 902 of the RF beam) in millimeter wave frequency through the open end 906 of the plurality of radiating waveguide antenna cells 102 for the millimeter wave communication between the antenna system 500A or 500B and a millimeter wave-based communication device. Example of the millimeter wave-based communication device may include, but are not limited to active reflectors, passive reflectors, or other millimeter wave capable telecommunications hardware, such as customer premises equipments (CPEs), smartphones, or or other base stations. In this case, a 22.5 degree tilt of the RF beam is shown in FIG. 9 in an example. The antenna system 500A or 500B may be used as a part of communication device in a mobile network, such as a part of a base station or an active reflector to send and receive beam of RF signals for high throughput data communication in millimetre wave frequency (for example, broadband).

FIG. 10 depicts a perspective top view of an exemplary four-by-four waveguide antenna element based beam forming phased array antenna system with dummy elements, in accordance with an exemplary embodiment of the disclosure. With reference to FIG. 10, there is shown a waveguide antenna element based beam forming phased array 1000A. The waveguide antenna element based beam forming phased array 1000A is a one-piece structure that comprises a plurality of non-radiating dummy waveguide antenna cells 1002 arranged in a first layout 1004 in addition to the plurality of radiating waveguide antenna cells 102 (of FIG. 1A). The plurality of non-radiating dummy waveguide antenna cells 1002 are positioned at edge regions (including corners) surrounding the plurality of radiating waveguide antenna cells 102 in the first layout 1004, as shown. Such arrangement of the plurality of non-radiating dummy waveguide antenna cells 1002 at edge regions (including corners) surrounding the plurality of radiating waveguide antenna cells 102 is advantageous and enables even electromagictec wave (or RF wave) radiation for the millimeter wave communication through the second end (such as the open end 906) of each of the plurality of radiating waveguide antenna cells 102 irrespective of positioning of the plurality of radiating waveguide antenna cells 102 in the first layout 1004. For example, radiating waveguide antenna cells that lie in the middle portion in the first layout 1004 may have same amount of radiation or achieve similar extent of tilt of a RF beam as compared to the radiating waveguide antenna cells that lie next to the plurality of non-radiating dummy waveguide antenna cells 1002 at edge regions (including corners).

FIG. 11 illustrates various components of a third exemplary antenna system, in accordance with an exemplary embodiment of the disclosure. With reference to FIG. 11, there is shown a cross-sectional side view of an antenna system 1100. The antenna system 1100 may comprise a plurality of radiating waveguide antenna cells (such as radiating waveguide antenna cells 1102a to 1102h) and a plurality of non-radiating dummy waveguide antenna cells (such as non-radiating dummy waveguide antenna cells 1104a and 1104b) in an waveguide antenna element based beam forming phased array. The waveguide antenna element based beam forming phased array may be an 8.times.8 (eight-by-eight) waveguide antenna element based beam forming phased array (shown in FIG. 12). In FIG. 11, a cross-sectional side view of the waveguide antenna element based beam forming phased array is shown in two dimension (2D).

The radiating waveguide antenna cells 1102a to 1102d may be mounted on a substrate module 1108a. The radiating waveguide antenna cells 1102e to 1102h may be mounted on a substrate module 1108b. The substrate modules 1108a and 1108b corresponds to the first substrate 402. The plurality of non-radiating dummy waveguide antenna cells (such as non-radiating dummy waveguide antenna cells 1104a and 1104b) are mounted on a second substrate (such as dummy substrates 1106a and 1106b). In some embodiments, the plurality of non-radiating dummy waveguide antenna cells may be mounted on the same type of substrate (such as the first substrate 402 or substrate modules 1108a and 1108b) as of the plurality of radiating waveguide antenna cells. In some embodiments, the plurality of non-radiating dummy waveguide antenna cells cells (such as non-radiating dummy waveguide antenna cells 1104a and 1104b) may be mounted on a different type of substrate, such as the dummy substrates 1106a and 1106b, which may be inexpensive as compared to first substrate the plurality of radiating waveguide antenna cells to reduce cost. The second substrate (such as dummy substrates 1106a and 1106b) may be different than the first substrate (such as the substrate modules 1108a and 1108b). This is a significant advantage compared to conventional approaches, where the conventional radiating antenna elements and the dummy antenna elements are on the same expensive substrate. The plurality of chips 502, the main system board 504, and the heat sink 506, are also shown, which are connected in a similar manner as described in FIG. 5.

FIG. 12 depicts a perspective top view of an exemplary eight-by-eight waveguide antenna element based beam forming phased array antenna system with dummy elements, in accordance with an exemplary embodiment of the disclosure. With reference to FIG. 12, there is shown a waveguide antenna element based beam forming phased array 1200A. The waveguide antenna element based beam forming phased array 1200A is a one-piece structure that comprises a plurality of non-radiating dummy waveguide antenna cells 1204 (such as the non-radiating dummy waveguide antenna cells 1104a and 1104b of FIG. 11) in addition to a plurality of radiating waveguide antenna cells 1202 (such as the radiating waveguide antenna cells 1102a to 1102h of FIG. 11). The plurality of non-radiating dummy waveguide antenna cells 1204 are positioned at edge regions (including corners) surrounding the plurality of radiating waveguide antenna cells 1202, as shown. Such arrangement of the plurality of non-radiating dummy waveguide antenna cells 1204 at edge regions (including corners) surrounding the plurality of radiating waveguide antenna cells 1202 is advantageous and enables even electromagictec wave (or RF wave) radiation for the millimeter wave communication through the second end (such as an open end 1206) of each of the plurality of radiating waveguide antenna cells 1202 irrespective of positioning of the plurality of radiating waveguide antenna cells 1202 in the waveguide antenna element based beam forming phased array 1200A.

FIG. 13 illustrates various components of a fourth exemplary antenna system, in accordance with an exemplary embodiment of the disclosure. FIG. 13 is described in conjuction with elements of FIG. 11. With reference to FIG. 13, there is shown a cross-sectional side view of an antenna system 1300. The antenna system 1300 may be similar to the antenna system 1100. The antenna system 1300 further includes an interposer 1302 in addition to the various components of the antenna system 1100 as described in FIG. 11. The interposer 1302 may be positioned only beneath the edge regions of a waveguide antenna element based beam forming phased array (such as the waveguide antenna element based beam forming phased array 100A or the waveguide antenna element based beam forming phased array 1200A at a first end (such as the first end 210) to shield radiation leakage from the first end of the plurality of radiating waveguide antenna cells (e.g., the plurality of radiating waveguide antenna cells 1202) of the waveguide antenna element based beam forming phased array (such as the waveguide antenna element based beam forming phased arrays 100A, 1000A, 1200A). In some embodiments, interposer 1302 may facilitate electrical connection routing from one waveguide antenna element based beam forming phased array to another waveguide antenna element based beam forming phased array at the edge regions. The interposer 1302 may not extend or cover the entire area of the waveguide antenna element based beam forming phased array at the first end (i.e., the end that is mounted on the first substrate (such as the substrate modules 1108a and 1108b). This may be further understood from FIGS. 14 and 15.

FIG. 14 illustrates positioning of an interposer in an exploded view of an exemplary four-by-four waveguide antenna element based beam forming phased array antenna system module, in accordance with an exemplary embodiment of the disclosure. With reference to FIG. 14, there is shown a four-by-four waveguide antenna element based beam forming phased array module 1402 with the interposer 1302. The four-by-four waveguide antenna element based beam forming phased array module 1402 may correspond to the integrated assemby of the waveguide antenna element based beam forming phased array 100A with the first substate 402 and the plurality of chips 502 mounted on the board, as shown and descibed in FIG. 8. The interposer 1302 may have a square-shaped or a rectangular-shaped hollow frame-like structure (for example a socket frame) with perforations to removably attach to corresponding protruded points on the four-by-four waveguide antenna element based beam forming phased array module 1402, as shown in an example.

FIG. 15 illustrates the interposer of FIG. 14 in an affixed state in an exemplary four-by-four waveguide antenna element based beam forming phased array antenna system module, in accordance with an exemplary embodiment of the disclosure. With reference to FIG. 15, there is shown the interposer 1302a in an affixed state on the four-by-four waveguide antenna element based beam forming phased array module 1402. As shown, the interposer 1302 may be positioned only beneath the edge regions of a waveguide antenna element based beam forming phased array, such as the four-by-four waveguide antenna element based beam forming phased array module 1402 in this case.

FIG. 16 illustrates various components of a fifth exemplary antenna system, in accordance with an exemplary embodiment of the disclosure. FIG. 16 is described in conjuction with elements of FIGS. 1A, 1B, 2A, 2B, 3A, 3B, and 4 to 15. With reference to FIG. 16, there is shown a cross-sectional side view of an antenna system 1600. The antenna system 1600 may be similar to the antenna system 1100 of FIG. 11. The antenna system 1600 further includes a ground (gnd) layer 1602 in addition to the various components of the antenna system 1100 as described in FIG. 11. The gnd layer 1602 is provided between the first end (such as the first end 210) of the plurality of radiating waveguide antenna cells (such as the radiating waveguide antenna cells 1102a to 1102d) of a waveguide antenna element based beam forming phased array and the first substrate (such as the substrate modules 1108a and 1108b or the first substrate 402 (FIGS. 4 and 5) to avoid or minimize ground loop noise from the ground (such as the ground 1106) of each radiating waveguide antenna cell of the plurality of the radiating waveguide antenna cells of the waveguide antenna element based beam forming phased array (such as the waveguide antenna element based beam forming phased array 100A or 1200A).

In accordance with an embodiment, the antenna system (such as the antenna system 500A, 500B, 1100, and 1300), may comprise a first substrate (such as the first substrate 402 or the substrate modules 1108a and 1108b), a plurality of chips (such as the chip 404 or the plurality of chips 502); and a waveguide antenna element based beam forming phased array (such as the waveguide antenna element based beam forming phased array 100A, 1000A, or 1200A) having a unitary body that comprises a plurality of radiating waveguide antenna cells (such as the plurality of radiating waveguide antenna cells 102, 1002, 1202, or 510), in a first layout (such as the first layout 1004 for millimeter wave communication. Each radiating waveguide antenna cell comprises a plurality of pins (such as the plurality of pins 206) that are connected with a body (such as the ground 208) of a corresponding radiating waveguide antenna cell that acts as ground for the plurality of pins. A first end of the plurality of radiating waveguide antenna cells of the waveguide antenna element based beam forming phased array as the unitary body in the first layout is mounted on the first substrate. The plurality of chips may be electrically connected with the plurality of pins and the ground of each of the plurality of radiating waveguide antenna cells to control beamforming through a second end (such as the open end 202 or 906) of the plurality of radiating waveguide antenna cells for the millimeter wave communication.

In accordance with an embodiment, the waveguide antenna element based beam forming phased array may be a one-piece structure of four-by-four waveguide array comprising sixteen radiating waveguide antenna cells in the first layout, where the one-piece structure of four-by-four waveguide array corresponds to the unitary body of the waveguide antenna element based beam forming phased array. The waveguide antenna element based beam forming phased array may be one-piece structure of eight-by-eight waveguide array comprising sixty four radiating waveguide antenna cells in the first layout, where the one-piece structure of eight-by-eight waveguide array corresponds to the unitary body of the waveguide antenna element based beam forming phased array.

In accordance with an embodiment, the waveguide antenna element based beam forming phased array may be one-piece structure of N-by-N waveguide array comprising M number of radiating waveguide antenna cells in the first layout, wherein N is a positive integer and M is N to the power of 2. In accordance with an embodiment, the waveguide antenna element based beam forming phased array may further comprise a plurality of non-radiating dummy waveguide antenna cells (such as the plurality of non-radiating dummy waveguide antenna cells 1002 or 204 or the non-radiating dummy waveguide antenna cells 1104a and 1104b) in the first layout. The plurality of non-radiating dummy waveguide antenna cells may be positioned at edge regions surrounding the plurality of radiating waveguide antenna cells in the first layout to enable even radiation for the millimeter wave communication through the second end of each of the plurality of radiating waveguide antenna cells irrespective of positioning of the plurality of radiating waveguide antenna cells in the first layout.

In accordance with an embodiment, the antenna system may further comprise a second substrate (such as dummy substrates 1106a and 1106b). The plurality of non-radiating dummy waveguide antenna cells in the first layout are mounted on the second substrate that is different than the first substrate.

In accordance with an embodiment, the antenna system may further comprise a system board (such as the system board 504) having an upper surface and a lower surface. The upper surface of the system board comprises a plurality of electrically conductive connection points (such as the plurality of electrically conductive connection points 518) to connect to the ground of each of the plurality of radiating waveguide antenna cells of the waveguide antenna element based beam forming phased array using electrically conductive wiring connections that passes through the first substrate, where the first substrate is positioned between the waveguide antenna element based beam forming phased array and the system board.

In accordance with an embodiment, the antenna system may further comprise a heat sink (such as the heat sink 506) that is attached to the lower surface of the system board. The heat sink have a comb-like structure in which a plurality of protrusions of the heat sink passes through a plurality of perforations in the system board such that the plurality of chips are in contact to the plurality of protrusions of the heat sink to dissipate heat from the plurality of chips through the heat sink. The first substrate may comprise an upper side and a lower side, where the first end of the plurality of radiating waveguide antenna cells of the waveguide antenna element based beam forming phased array may be mounted on the upper side of the first substrate, and the plurality of chips are positioned between the lower side of the first substrate and the upper surface of the system board.

In accordance with an embodiment, the first substrate may comprises an upper side and a lower side, where the plurality of chips and the plurality of radiating waveguide antenna cells of the waveguide antenna element based beam forming phased array are positioned on the upper side of the first substrate. A vertical length between the plurality of chips and the first end of the plurality of radiating waveguide antenna cells of the waveguide antenna element based beam forming phased array may be less than a defined threshold to reduce insertion or routing loss between the plurality of radiating waveguide antenna cells of the waveguide antenna element based beam forming phased array and the plurality of chips, based on the positioning of the plurality of radiating waveguide antenna cells of the waveguide antenna element based beam forming phased array and the plurality of chips on a same side of the first substrate.

In accordance with an embodiment, the unitary body of the waveguide antenna element based beam forming phased array may have a metallic electrically conductive surface that acts as a heat sink to dissipate heat from the plurality of chips to atmospheric air through the metallic electrically conductive surface of the waveguide antenna element based beam forming phased array, based on a contact of the plurality of chips with the plurality of radiating waveguide antenna cells of the waveguide antenna element based beam forming phased array on the upper side of the first substrate. The plurality of pins in each radiating waveguide antenna cell may be protrude pins (such as the plurality of protrude pins 702) that protrude from the first end from a level of the body of the corresponding radiating waveguide antenna cell to establish a firm contact with the first substrate.

In accordance with an embodiment, the waveguide antenna element based beam forming phased array is a dual-polarized open waveguide array antenna configured to transmit and receive radio frequency waves for the millimeter wave communication in both horizontal and vertical polarizations or as left hand circular polarization (LHCP) or right hand circular polarization (RHCP). The plurality of pins in each radiating waveguide antenna cell may include a pair of vertical polarization pins that acts as a first positive terminal and a first negative terminal and a pair of horizontal polarization pins that acts as a second positive terminal and a second negative terminal, wherein the pair of vertical polarization pins and the pair of horizontal polarization pins are utilized for dual-polarization. The plurality of chips comprises a set of receiver (Rx) chips, a set of transmitter (Tx) chips, and a signal mixer chip.

In accordance with an embodiment, the plurality of chips may be configured to control propagation and a direction of a radio frequency (RF) beam in millimeter wave frequency through the second end of the plurality of radiating waveguide antenna cells for the millimeter wave communication between the antenna system and a millimeter wave-based communication device, where the second end may be an open end of the plurality of radiating waveguide antenna cells for the millimeter wave communication. The propagation of the radio frequency (RF) beam in millimeter wave frequency may be controlled based on at least a flow of current in each radiating waveguide antenna cell, where the current flows from the ground towards a negative terminal of a first chip of the plurality of chips via at least a first pin of the plurality of pins, and from a positive terminal of the first chip towards the ground via at least a second pin of the plurality of pins in each corresponding radiating waveguide antenna cell of the plurality of radiating waveguide antenna cells.

In accordance with an embodiment, the antenna system may further comprise an interposer (such as the interposer 1302) beneath the edge regions of the waveguide antenna element based beam forming phased array at the first end in the first layout to shield radiation leakage from the first end of the plurality of radiating waveguide antenna cells of the waveguide antenna element based beam forming phased array. In accordance with an embodiment, the antenna system may further comprise a ground (gnd) layer (such as the gnd layer 1602) between the first end of the plurality of radiating waveguide antenna cells of the waveguide antenna element based beam forming phased array and the first substrate to avoid or minimize ground loop noise from the ground of each radiating waveguide antenna cell of the plurality of the radiating waveguide antenna cells of the waveguide antenna element based beam forming phased array.

The waveguide antenna element based beam forming phased arrays 100A, 110A, 1000A, 1200A may be utilized in, for example, active and passive reflector devices disclosed in, for example, U.S. application Ser. No. 15/607,743, and U.S. application Ser. No. 15/834,894.

While various embodiments described in the present disclosure have been described above, it should be understood that they have been presented by way of example, and not limitation. It is to be understood that various changes in form and detail can be made therein without departing from the scope of the present disclosure. In addition to using circuitry or hardware (e.g., within or coupled to a central processing unit ("CPU"), microprocessor, micro controller, digital signal processor, processor core, system on chip ("SOC") or any other device), implementations may also be embodied in software (e.g. computer readable code, program code, and/or instructions disposed in any form, such as source, object or machine language) disposed for example in a non-transitory computer-readable medium configured to store the software. Such software can enable, for example, the function, fabrication, modeling, simulation, description and/or testing of the apparatus and methods describe herein. For example, this can be accomplished through the use of general program languages (e.g., C, C++), hardware description languages (HDL) including Verilog HDL, VHDL, and so on, or other available programs. Such software can be disposed in any known non-transitory computer-readable medium, such as semiconductor, magnetic disc, or optical disc (e.g., CD-ROM, DVD-ROM, etc.). The software can also be disposed as computer data embodied in a non-transitory computer-readable transmission medium (e.g., solid state memory any other non-transitory medium including digital, optical, analogue-based medium, such as removable storage media). Embodiments of the present disclosure may include methods of providing the apparatus described herein by providing software describing the apparatus and subsequently transmitting the software as a computer data signal over a communication network including the internet and intranets.

It is to be further understood that the system described herein may be included in a semiconductor intellectual property core, such as a microprocessor core (e.g., embodied in HDL) and transformed to hardware in the production of integrated circuits. Additionally, the system described herein may be embodied as a combination of hardware and software. Thus, the present disclosure should not be limited by any of the above-described exemplary embodiments, but should be defined only in accordance with the following claims and their equivalents.

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