Dual-circular polarized antenna system

US10230150B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-10230150-B2
Application numberUS-201816106769-A
CountryUS
Kind codeB2
Filing dateAug 21, 2018
Priority dateDec 6, 2011
Publication dateMar 12, 2019
Grant dateMar 12, 2019

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  1. Title

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  2. Abstract

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  5. First independent claim

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Abstract

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In an example embodiment, an azimuth combiner comprises: a septum layer comprising a plurality of septum dividers; first and second housing layers attached to first and second sides of the septum layer; a linear array of ports on a first end of the combiner; wherein the first and second housing layers each comprise waveguide H-plane T-junctions; wherein the waveguide T-junctions can be configured to perform power dividing/combining; and wherein the septum layer evenly bisects each port of the linear array of ports. A stack of such azimuth combiners can form a two dimensional planar array of ports to which can be added a horn aperture layer, and a grid layer, to form a dual-polarized, dual-BFN, dual-band antenna array.

First claim

Opening claim text (preview).

What is claimed is: 1. An antenna array comprising: a plurality of combiner sticks, wherein each of the plurality of combiner sticks comprises a linear array of ports arranged along a first dimension and coupled to a common port via a network of combiner/dividers, and wherein the plurality of combiner sticks are stacked along a second dimension such that the linear array of ports of the plurality of combiner sticks define a two-dimensional grid of ports; a horn plate comprising an array of horn elements coupled to the plurality of combiner sticks, wherein each horn element of the array of horn elements includes a horn port coupled to a corresponding port of the two-dimensional grid of ports and further includes an aperture port; and a grid plate coupled to the horn plate, the grid plate dividing the aperture port of each horn element into a corresponding plurality of apertures. 2. The antenna array of claim 1 , further comprising an aperture close out coupled to the grid plate. 3. The antenna array of claim 1 , wherein the common port of each of the plurality of combiner sticks is a first common port associated with a first polarization, the network of combiner/dividers of each of the plurality of combiner sticks is a first network of combiner/dividers, and each of the plurality of combiner sticks further comprises a second common port associated with a second polarization and coupled the linear array of ports via a second network of combiner/dividers. 4. The antenna array of claim 3 , wherein each of the plurality of combiner sticks comprises a plurality of polarizers dividing the linear array of ports into first divided ports and second divided ports, the first divided ports coupled to the first common port via the first network of combiner/dividers, and the second divided ports coupled to the second common port via the second network of combiner/dividers. 5. The antenna array of claim 4 , wherein the plurality of polarizers of each of the plurality of combiner sticks are septum polarizers within a septum layer. 6. The antenna array of claim 1 , wherein the linear array of ports of a first combiner stick of the plurality of combiner sticks are staggered along the first dimension relative to the linear array of ports of a second combiner stick of the plurality of combiner sticks. 7. The antenna array of claim 6 , wherein each of the linear array of ports of the first combiner stick are staggered by the same amount relative to the linear array of ports of the second combiner stick. 8. The antenna array of claim 1 , wherein the grid plate suppresses grating lobes of the antenna array. 9. The antenna array of claim 1 , wherein the linear array of ports of each of the plurality of combiner sticks is a one-by-N array, where N is the number of ports of each of the plurality of combiner sticks. 10. The antenna array of claim 1 , wherein each of the plurality of combiner sticks is a row of the antenna array. 11. The antenna array of claim 1 , wherein each of the plurality of combiner sticks comprises a plurality of layers. 12. The antenna array of claim 11 , wherein: the common port of each of the plurality of combiner sticks is a first common port associated with a first polarization; the network of combiner/dividers of each of the plurality of combiner sticks is a first network of combiner/dividers within a first set of layers of the plurality of layers; and each of the plurality of combiner sticks further comprises a second common port associated with a second polarization and coupled the linear array of ports via a second network of combiner/dividers, the second network of combiner/dividers within a second set of layers of the plurality of layers. 13. The antenna array of claim 12 , wherein the first set of layers is separated from the second set of layers by at least one layer of the plurality of layers. 14. The antenna array of claim 1 , wherein the linear array of ports of a first combiner stick of the plurality of combiner sticks is a first number of ports, and the plurality of combiner sticks of the antenna array is a second number of combiner sticks, the first number greater than the second number. 15. The antenna array of claim 1 , further comprising an elevation combiner network coupled to the common port of each of the plurality of combiner sticks. 16. The antenna array of claim 1 , wherein the common port of each of the plurality of combiner sticks is centrally located relative to the linear array of ports. 17. The antenna array of claim 1 , wherein the linear array of ports of each of the plurality of combiner sticks is on a first side of the antenna array, and the common port of each of the plurality of combiner sticks is on a second side of the antenna array. 18. The antenna array of claim 17 , wherein the second side of the antenna array is opposite the first side of the antenna array. 19. The antenna array of claim 1 , wherein the plurality of combiner sticks, the horn plate and the grid plate define an antenna aperture, and further comprising a positioner coupled to the antenna aperture. 20. The antenna array of claim 19 , wherein the positioner is a mechanical antenna pointing system. 21. The antenna array of claim 1 , wherein each of the plurality of combiner sticks has a thickness in the second dimension that is less than or equal to one wavelength at a highest operating frequency of the antenna array.

Assignees

Inventors

Classifications

  • Manufacturing waveguides or transmission lines of the waveguide type · CPC title

  • Auxiliary devices (coupling devices of the waveguide type H01P5/00) · CPC title

  • linear waveguide fed arrays · CPC title

  • Adaptation for use in or on aircraft, missiles, satellites, or balloons · CPC title

  • Coupling devices having more than two ports (H01P5/04 takes precedence) · CPC title

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What does patent US10230150B2 cover?
In an example embodiment, an azimuth combiner comprises: a septum layer comprising a plurality of septum dividers; first and second housing layers attached to first and second sides of the septum layer; a linear array of ports on a first end of the combiner; wherein the first and second housing layers each comprise waveguide H-plane T-junctions; wherein the waveguide T-junctions can be configur…
Who is the assignee on this patent?
Viasat Inc
What technology area does this patent fall under?
Primary CPC classification H01Q21/0037. Mapped technology areas include Electricity.
When was this patent published?
Publication date Tue Mar 12 2019 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).