Патент США № | 11264729 |
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Автор(ы) | Hand и др. |
Дата выдачи | 01 марта 2022 г. |
Systems and methods are provided for wide scan phased array fed reflector systems using ring-focus optics to significantly improve the scan volume of such systems. The subject system includes a reflector having a focal plane and a parabolic curvature configured to receive electromagnetic radiation having a first gain and provide reflected electromagnetic radiation having a second gain greater than the first gain that collimates into a focal ring. The subject system includes a feed array having feed elements positioned about the focal ring, in which each feed element is configured to receive the reflected electromagnetic radiation from the reflector and collimate the reflected electromagnetic radiation into a scanned beam for scanning an annular region. In some aspects, the feed array is centered on the focal ring such that at least one feed element overlaps with the focal ring and remaining feed elements are non-overlapping with the focal ring.
Автор(ы): | Thomas Henry Hand (Highlands Ranch, CO), Arun Kumar Bhattacharyya (Littleton, CO), Joseph M. Torres (Littleton, CO), Scott Alan Lundgren (Littleton, CO), Konrad J. Gojara (Littleton, CO), Grayeme Everett Platt (Littleton, CO) | ||||||||||
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Заявитель: |
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Патентообладатель: | Lockheed Martin Corporation (Bethesda, MD) |
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Идентификатор семейства: | 66814780 | ||||||||||
Номер заявки: | 16/226,445 | ||||||||||
Приоритет: | 19 декабря 2018 г. |
Идентификатор патента | Дата публикации | |
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US 20190190146 A1 | Jun 20, 2019 | |
Номер заявки | Дата подачи заявки | Номер патента | Дата публикации | ||
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62607864 | Dec 19, 2017 | ||||
Действующий класс US: | 1/1 |
Действующий класс СПК: | H01Q3/2676; H01Q3/2658; H01Q19/17; H01Q21/20; H01Q19/175; H01Q19/18 |
Действующий класс МПК: | H01Q19/17; H01Q21/20; H01Q3/26; H01Q19/18 |
3713163 | January 1973 | Keller |
3983560 | September 1976 | MacDougall |
4434425 | February 1984 | Barbano |
6784849 | August 2004 | Benco |
6999044 | February 2006 | Durham |
7728782 | June 2010 | Watson |
9054414 | June 2015 | Mizzoni |
9373896 | June 2016 | Runyon |
10665955 | May 2020 | Hirabe |
2006/0082513 | April 2006 | Kralovec et al. |
2009/0201213 | August 2009 | Watson |
2012/0081266 | May 2012 | Graber |
2014/0327596 | November 2014 | Darooka |
2016/0359236 | December 2016 | Sundaram |
WO-2017056136 | Apr 2017 | WO | |||
Moreira, F.J.S., et al., "Generalized Classical Axially Symmetric Dual-Reflector Antennas," IEEE Transactions on Antennas and Propagation, vol. 49, No. 4, pp. 547-554, Apr. 2001. cited by applicant . Fenn, A.J., et al., "Design and Analysis of an Axisymmetric Phased Array Fed Gregorian Reflector System for Limited Scanning," 2016 IEEE international Symposium on Phased Array Systems and Technology (PAST), Oct. 2016. cited by applicant . Prata, Jr., A., et al., "Displaced-Axis-Ellipse Reflector Antenna for Spacecraft Communications," Proceedings of the 2003 SBMO/IEEE MTT-S International Microwave and Optoelectronics Conference--IMOC 2003, pp. 391-395, Sep. 2003. cited by applicant . International Search Report and Written Opinion from PCT/US18/66584, dated Mar. 1, 2019, 9 pages. cited by applicant . European Extended Search Report, dated Aug. 9, 2021. cited by applicant . Ma Chao et al., "Subreflectarrays for Ring-Focus Reflector Antenna" 2017 10.sup.th Global Symposium on Millimeter-Waves, IEEE, May 24, 2017, pp. 137-139. cited by applicant. |