The present invention relates to phased array RADAR aperture assembly.
Conventional phased array RADAR apertures are generally formed by an array of RADAR elements that are secured to the perimeter frame structure of the assembly. These conventional phased array RADAR aperture structures are relatively small and the internal structural columns holding the electronics for the RADAR elements that form the entire aperture fit within the perimeter frame structure and are supported by the perimeter frame structure.
As the application of phased array RADAR systems have advanced, there have been needs for building phases array RADARs with very large apertures. These radar aperture assembly structures are so large that the internal structural columns for the RADAR elements cannot be built monolithically while spanning the full length of the RADAR aperture. The RADAR elements are constructed as several modular units that need to be connected linearly to span the full length of the RADAR aperture. However, building multiple smaller perimeter frames within the RADAR aperture structure to secure each RADAR element is not desirable because such structure would introduce structural seams within the aperture assembly that would interfere with the proper operation of the phased array RADAR.
Therefore, there is a need for connecting the RADAR elements without structural seams that would enable assembling the RADAR elements into a large phased array RADAR aperture structure.
In one aspect of the present invention, a phased array radar aperture assembly comprises at least one RADAR aperture section supported on a plurality of support trusses arranged parallel to each other, each support truss having a top surface. The RADAR aperture section comprises a plurality of RADAR modular aperture sections supported on the top surfaces of the plurality of support trusses, wherein each of the RADAR modular aperture sections comprises a modular column extending the length of the RADAR modular aperture sections and supporting the RADAR modular aperture section, wherein each of the modular columns is configured to connect to a modular column of another RADAR modular aperture section in an end-to-end connection, wherein the end-to-end connection is made on the top surface of one of the plurality of support trusses and aligns two adjacent RADAR modular aperture sections with respect to each other and forms a seamless joint between the two adjacent radar modular aperture sections. The modular columns are arranged orthogonal to the support trusses and extend between two neighboring support trusses and a plurality of connectors are affixed to the top surface of each of the support trusses, where the connectors are configured to form the end-to-end connection between two modular columns.
The end-to-end connection aligns the two RADAR modular aperture sections with respect to each other and allows the two RADAR modular aperture sections to be seamlessly joined to form the phased array RADAR aperture assembly.
The present invention is best understood from the following detailed description when read in conjunction with the accompanying drawing. Like numerals denote like features throughout the specification and drawing. The drawings are schematic unless identified as otherwise and the figures are not drawn to scale. Included in the drawing are the following figures.
Referring to
Each of the modular columns 110 is configured to connect to a modular column of another RADAR modular aperture section in an end-to-end connection. The end-to-end connection is formed on the top surface 32 of one of the plurality of support trusses 30 and aligns two adjacent RADAR modular aperture sections 100 with respect to each other and forms a seamless joint J between the two adjacent RADAR modular aperture sections.
The modular columns 110 are arranged orthogonal to the support trusses 30 and extend between two neighboring support trusses. A plurality of connectors 200 are affixed to the top surface 32 of each of the support trusses, where the connectors 200 are configured to form the end-to-end connection between two modular columns.
Referring to
The embodiment of the connector 200 shown in
The opposite side of the connector 200 is configured with a guiding slot 210 extending and oriented vertically on one side of the connector 200 for receiving one end of the second modular column B. This engagement between the connector 200 and the second modular column B allows the second modular column B to translate laterally in the direction DL for accommodating thermal expansion of the structures but prevent any lateral translation in the direction DO orthogonal to the second modular column's face.
The vertically oriented opposing tongues 221, 222 of the connector 200 form a vertically oriented slot 220 that has a T-shaped cross-section as shown in
This description of the exemplary embodiments is intended to be read in connection with the figures of the accompanying drawing, which are to be considered part of the entire written description.
Although the invention has been described in terms of exemplary embodiments, it is not limited thereto. Rather, the appended claims should be construed broadly, to include other variants and embodiments of the invention, which may be made by those skilled in the art without departing from the scope and range of equivalents of the invention.
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