The present invention relates to antennas, such as microwave reflector antennas, and, more specifically but not exclusively, to mechanisms for retaining a radome upon the periphery of the reflector dish of such antennas.
This section introduces aspects that may help facilitate a better understanding of the invention. Accordingly, the statements of this section are to be read in this light and are not to be understood as admissions about what is prior art or what is not prior art.
U.S. patent application publication no. 2013/0099991 A1 (“the '991 publication”), the teachings of which are incorporated herein by reference, discloses a rim-based mechanism for retaining a radome upon the periphery of the reflector dish of a microwave reflector antenna. For typical applications, a relatively large clamping fixture is used to apply enough force to hold two semi-circular, metallic rims securely in place over the periphery of the mated radome and reflector dish while the rims are fastened to provide an RF seal with the reflector dish that limits RF leakage during antenna transmission. To reduce RF leakage to satisfactory levels, this rim-based mechanism often requires a backlobe suppression ring, which is frequency specific. See, e.g., U.S. Pat. No. 7,138,958, the teachings of which are incorporated herein by reference. In addition, the use of the large clamping fixture limits the act of assembling the various elements into the desired radome-reflector assembly to be implemented in only those locations where such a fixture is available.
Other embodiments of the invention will become more fully apparent from the following detailed description, the appended claims, and the accompanying drawings in which like reference numerals identify similar or identical elements.
As described more fully below, the assembly 100 can be assembled by placing the two rims 130 around opposing sides of the peripheries of the radome 110 and the reflector 120. Two of the ends of the two rims are then secured together using the fixed clamp 150, then the other two ends of the two rims are loosely connected using the adjustable clamp 170 (i.e., with the adjustable clamp 170 at or near the loosest setting of its adjustment range). The adjustable clamp 170 is then adjusted towards its tightest setting until a desired seal is established between the radome and the reflector. In some embodiments, the multi-piece adjustable clamp 170 is pre-assembled at its relatively loose setting prior to its attachment to the rims.
If the adjustment range of the adjustable clamp 170 is great enough, a slightly different procedure can be employed to assemble the assembly 100. According to this different procedure, the two rims 130 are initially placed around the opposing sides of the periphery of only the radome 110, and the fixed clamp 150 and the (pre-assembled) adjustable clamp 170 are then applied to loosely secure the radome within the rims. This sub-assembly is then fitted over the periphery of the reflector 120, and the adjustable clamp 170 is then tightened to complete the assembly procedure.
A semi-cylindrical, circumferential rim body 232, supporting the other elements of the rim;
A first, radial rim leg 234, extending perpendicularly from the rim body 232 towards the center line of the semi-cylinder defined by the rim body;
A second, radial rim leg 236, shorter than the first rim leg 234, but also extending perpendicularly from the rim body 232 towards the semi-cylinder center line; and
A third rim leg 238, shorter than the second rim leg 236 and extending from the rim body 232 at about a 45-degree angle towards the semi-cylinder center line. Note that, with reference to
As shown in
The third rim leg 238 has a slanted or angled inner surface 244 facing the interior of the second cavity 242. The rim 230 is designed such that, as the rim is forced radially (down in
As shown in
As shown in
A male component 376;
A female component 378 having a recess 379 that receives a corresponding portion of the male component;
A threaded screw 380 that fits within corresponding holes in the male and female components; and
A threaded nut 382 that engages with the threaded end of the screw.
As shown in
As explained previously, adjustable clamp 370 may be pre-assembled at a relatively loose setting (e.g., screw 380 within the corresponding holes in the male and female components 376 and 378, but with the nut 382 engaged near the threaded end of the screw 380). After fixed clamp 350 of
Note that the keyed openings 331 at either end of each rim 330 are mirror images, such that both rims 330 are identical to one another, simply rotated radially 180 degrees from one another. Furthermore, the corresponding keyed features 352 and 372 of the fixed and adjustable clamps 350 and 370 are identical such that either clamp can be used at either the top or the bottom of the radome-reflector assembly (as top and bottom are depicted in the view of
In the embodiment of
As shown in
As shown in
As shown in
A semi-cylindrical, circumferential rim body 932, supporting the other elements of the rim;
A first, radial rim leg 934, extending perpendicularly from the rim body 932 towards the center line of the semi-cylinder defined by the rim body;
A second, radial rim leg 936, shorter than the first rim leg 934, but also extending perpendicularly from the rim body 932 towards the semi-cylinder center line; and
A third rim leg 938, having a U-shaped “crimp” portion 943 and a slanted, inner surface 944.
As with the embodiment of
As shown in
As with rim 230 of
As shown in
In addition to those discussed previously, the rim-based mechanisms of the present disclosure may provide one or more of the following additional advantages over the rim-based mechanism of the '991 publication in assembling radome-reflector assemblies. The amount of circumferential connecting force applied to certain rims of the present disclosure in order to form a good RF seal may be less than the corresponding connecting force applied per the '991 publication. As such, corresponding radome-reflector assemblies of the present disclosure can be assembled without the use of relatively large clamping fixtures. In fact, certain radome-reflector assemblies of the present disclosure can be assembled in the field without requiring the use of any clamping fixtures or other special tooling.
Moreover, the lighter circumferential connecting force reduces the risk of physically distorting the shape of the reflector, thereby avoiding antenna performance degradation that might otherwise result from such physical distortion. The lighter circumferential connecting force also enables the fixed and adjustable clamps to be made of molded or pressed plastic or low-cost metal.
Furthermore, certain radome-reflector assemblies of the present disclosure do not require frequency-specific backlobe suppression rings, opening the opportunity to produce assemblies having broader frequency bands of operation.
In certain embodiments, such as those shown in
Although the present disclosure has been described in the context of metal rims and metal reflectors, in other embodiments, other suitable materials may be used for the rims and/or reflectors.
Although the present disclosure has been described in the context of radome-reflector assemblies having exactly two rims, in alternative embodiments, assemblies may have more than two rims or just a single rim. For embodiments having three or more rims, each pair of adjacent rims could be interconnected using either a fixed clamp or an adjustable clamp. In some of those embodiments, at least one pair of adjacent clamps are interconnected using an adjustable clamp. For embodiments having just a single rim, the substantially circular rim would have a gap such that the two ends of the rim would be bridged by a clamp that would be applied/tightened after the rim was twisted around the periphery of the radome and the sub-assembly then applied to the periphery of the reflector. In some of those embodiments, the clamp is an adjustable clamp. It is also possible to have a hinged rim assembly consisting of two or more rims interconnected by one or more hinges, where the hinged rim assembly would have one or more gaps that would be bridged by one or more corresponding, fixed or adjustable clamps.
One common feature of the embodiments of the present disclosure described above is the existence of a slanted inner surface on the third rim leg that forces the reflector laterally against the second rim leg to form a good RF seal when circumferential connecting force is applied by an adjustable clamp securing two ends of the rims together. Another common feature is that the peripheries of the radome and the reflector are received within different rim cavities.
Unless explicitly stated otherwise, each numerical value and range should be interpreted as being approximate as if the word “about” or “approximately” preceded the value or range.
It will be further understood that various changes in the details, materials, and arrangements of the parts which have been described and illustrated in order to explain embodiments of this invention may be made by those skilled in the art without departing from embodiments of the invention encompassed by the following claims.
The use of figure numbers and/or figure reference labels in the claims is intended to identify one or more possible embodiments of the claimed subject matter in order to facilitate the interpretation of the claims. Such use is not to be construed as necessarily limiting the scope of those claims to the embodiments shown in the corresponding figures.
It should be understood that the steps of the exemplary methods set forth herein are not necessarily required to be performed in the order described, and the order of the steps of such methods should be understood to be merely exemplary. Likewise, additional steps may be included in such methods, and certain steps may be omitted or combined, in methods consistent with various embodiments of the invention.
Although the elements in the following method claims, if any, are recited in a particular sequence with corresponding labeling, unless the claim recitations otherwise imply a particular sequence for implementing some or all of those elements, those elements are not necessarily intended to be limited to being implemented in that particular sequence.
Reference herein to “one embodiment” or “an embodiment” means that a particular feature, structure, or characteristic described in connection with the embodiment can be included in at least one embodiment of the invention. The appearances of the phrase “in one embodiment” in various places in the specification are not necessarily all referring to the same embodiment, nor are separate or alternative embodiments necessarily mutually exclusive of other embodiments. The same applies to the term “implementation.”
The embodiments covered by the claims in this application are limited to embodiments that (1) are enabled by this specification and (2) correspond to statutory subject matter. Non-enabled embodiments and embodiments that correspond to non-statutory subject matter are explicitly disclaimed even if they fall within the scope of the claims.
The present application claims priority under 35 U.S.C. § 120 as a divisional of U.S. patent application Ser. No. 14/247,307, filed Apr. 8, 2014 which application claims the benefit of the filing date of U.S. provisional application No. 61/949,383, filed on Mar. 7, 2014, the teachings of which are incorporated herein by reference in their entirety.
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Number | Date | Country | |
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20170133755 A1 | May 2017 | US |
Number | Date | Country | |
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61949383 | Mar 2014 | US |
Number | Date | Country | |
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Parent | 14247307 | Apr 2014 | US |
Child | 15412244 | US |