Waveguide sensor assemblies and related methods
11201414 · 2021-12-14
Assignee
Inventors
- Scott B. Doyle (Sudbury, MA, US)
- Robert J. Sletten (Bow, NH, US)
- Angelos Alexanian (Lexington, MA, US)
Cpc classification
H01Q21/0087
ELECTRICITY
H01Q1/3233
ELECTRICITY
H01Q1/42
ELECTRICITY
International classification
H01Q21/06
ELECTRICITY
Abstract
Antenna assemblies for vehicles, such as RADAR sensor antenna assemblies. In some embodiments, the assembly may comprise an antenna block defining an array of waveguide grooves on a first side of the antenna block. A slotted layer comprising a plurality of slots may be coupled with the antenna block with the slots at least partially aligned with the waveguide grooves of the antenna block. An adhesive layer may be positioned in between the antenna block and the slotted layer.
Claims
1. A vehicle RADAR module, comprising: an antenna block defining a first array of waveguide grooves on a first side of the antenna block; a slotted layer comprising a plurality of slots at least partially aligned with the waveguide grooves of the antenna block; an adhesive layer positioned in between the antenna block and the slotted layer; a cover coupled to the antenna block such that at least a portion of the antenna block is recessed within the cover; and at least one mounting tab configured for mounting the vehicle RADAR module to a vehicle, wherein the at least one mounting tab protrudes from the antenna block defining the first array of waveguide grooves, and wherein the at least one mounting tab comprises an integral portion of the antenna block.
2. The vehicle RADAR module of claim 1, further comprising a second array of waveguide grooves positioned on a second side of the antenna block opposite the first side.
3. The vehicle RADAR module of claim 1, wherein the at least one mounting tab protrudes beyond a perimeter of the cover, wherein the at least one mounting tab comprises a mounting feature configured to engage a corresponding mounting feature on a vehicle, and wherein the mounting feature comprises at least one of a fastener opening, a snap-fit prong, a snap-fit groove, a mounting bracket, and a mounting post.
4. The vehicle RADAR module of claim 1, wherein the antenna block comprises a recess, and wherein the cover comprises a rim engaged within the recess to affix the cover to the antenna block.
5. The vehicle RADAR module of claim 4, wherein the cover is crimped to the antenna block at the recess.
6. The vehicle RADAR module of claim 1, further comprising a plurality of ridges extending within the waveguide grooves.
7. The vehicle RADAR module of claim 1, wherein the first array comprises a plurality of waveguide grooves.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Non-limiting and non-exhaustive embodiments of the disclosure are described, including various embodiments of the disclosure with reference to the figures, in which:
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DETAILED DESCRIPTION
(11) A detailed description of apparatus, systems, and methods consistent with various embodiments of the present disclosure is provided below. While several embodiments are described, it should be understood that the disclosure is not limited to any of the specific embodiments disclosed, but instead encompasses numerous alternatives, modifications, and equivalents. In addition, while numerous specific details are set forth in the following description in order to provide a thorough understanding of the embodiments disclosed herein, some embodiments can be practiced without some or all of these details. Moreover, for the purpose of clarity, certain technical material that is known in the related art has not been described in detail in order to avoid unnecessarily obscuring the disclosure.
(12) The embodiments of the disclosure may be best understood by reference to the drawings, wherein like parts may be designated by like numerals. It will be readily understood that the components of the disclosed embodiments, as generally described and illustrated in the figures herein, could be arranged and designed in a wide variety of different configurations. Thus, the following detailed description of the embodiments of the apparatus and methods of the disclosure is not intended to limit the scope of the disclosure, as claimed, but is merely representative of possible embodiments of the disclosure. In addition, the steps of a method do not necessarily need to be executed in any specific order, or even sequentially, nor need the steps be executed only once, unless otherwise specified. Additional details regarding certain preferred embodiments and implementations will now be described in greater detail with reference to the accompanying drawings.
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(14) It should be understood that although, in preferred embodiments, a plurality of antennae may be provided and therefore a plurality of corresponding antennae structures—such as a plurality of waveguides, grooves, etc.—may be provided, it is contemplated that some embodiments may comprise an array having a single antenna and therefore only a single waveguide, for example. Such antenna/waveguide/groove may curve about the block/assembly rather than be in a series of parallel lines in some embodiments. As another example, in some embodiments, grooves, slots, or the like may be arranged in a disc formation, or any other suitable formation, including linear, curved, etc.
(15) In the depicted embodiment, each of the grooves is defined by a first plurality of posts 122 extending in a row and a second plurality of posts 122 extending in another row that, in some embodiments, may be parallel to the first plurality of posts 122. Thus, antenna 120A is defined by two parallel rows of posts 122 and antenna 120B is similarly defined by two parallel rows of posts 122, and so on. Antennae 120H and 1201 share a common row of posts 122. In other words, three rows of posts 122 define two antennae with the middle row being used to define sides of two separate grooves/antennae.
(16) It should be understood, however, that other grooves and/or antennae, either in the same embodiment or in other embodiments, may not be defined by any posts 122 or other features that are shared in common with other grooves/antennae. For example, as also shown in
(17) As also shown in
(18) In some embodiments, including the one depicted in
(19) As also discussed below, any or all of the waveguide structures discussed above or elsewhere herein may be formed or otherwise disposed on both sides of antenna block 110. Thus, for example, posts 122, ridges 125, and/or grooves may be formed on side 114 as well as, or as an alternative to, side 112.
(20) In preferred embodiments, block 110 may comprise a casting, such as a casting comprising a Zinc or other suitable preferably metal material. However, in other contemplated embodiments, block 110 may comprise a plastic or other material. In some such embodiments, metallic inserts, coatings, or the like may be used if desired. In typical sensor assemblies, which, as previously mentioned, may be configured specifically for use in connection with vehicles, other structures may be combined with block/casting 110. For example, as shown in
(21) Slotted layer 140 of antenna assembly 100 may comprise one or more rows 145 of slots 142, which may correspond in number and/or location with the antennae partially defined by antenna block 140. Thus, layer 140 comprises six rows 145 of slots 142, which may comprise elongated slots, each of which, once layer 140 has been coupled to antenna block 140, is aligned with a respective antenna of the six antennae partially defined by block 140. As also shown in
(22) In some embodiments, this staggering configuration may be applied relative to antenna block 140 such that each slot 142 extends along a side of a groove defined by posts 122 and such that each slot 142 extends along an opposite side of the groove relative to its adjacent slot 142 to facilitate a desired guidance of RF or other electromagnetic radiation though slots 142. However, those of ordinary skill in the art will appreciate that a wide variety of alternative configurations are possible depending upon the desired functionality and specifications of the waveguide/sensor assembly.
(23) Preferably, slotted layer 140 comprises a metal or other conductive material. Layer 140 may be coupled with block 140 in a variety of possible ways. For example, an adhesive, solder, heat stakes, screws, other fasteners, and the like may be used to couple layer 140 to block 110. In some embodiments, as discussed below, another layer, such as a layer of adhesive tape, may be inserted in between layers 110 and 140, which may, either entirely or in part, be used to provide this coupling. In embodiments in which solder is used, such solder may be applied to the top of one or more (in some embodiments, all) of posts 122 and/or ridges 125 (if present).
(24) An alternative embodiment of an antenna assembly 300, such as a vehicle RADAR or other vehicle sensor antenna assembly, is shown in
(25) Block 310 may otherwise be similar to block 110. Thus, block 310 may comprise an array of antennae structures 320 that may be used to at least partially define a plurality of antennae for a vehicle RADAR or other sensor assembly. In some embodiments, one or more ridges 325 may be positioned within each groove 322 to further define the waveguides as desired. In addition, one or more of such ridges 325 may comprise a notch 326 and/or slot that, in some embodiments, may extend through block 310 from an upper/first surface 312 to a lower/second surface 314, which may allow for desired guidance of RF or other electromagnetic waves from one side of antenna block 310 to the other. As previously mentioned, the antenna structures depicted on surface/side 312 may also be formed on surface/side 314 if desired.
(26) A slotted layer 340 may be coupled to block 310. Slotted layer 340 may be similar to slotted layer 140 and may therefore comprise a plurality of rows 345 of slots 340. Slots 342 may be positioned and configured as desired. However, in the depicted embodiments, slots 342 may be elongated and/or positioned in rows 345 that extend adjacent to a respective groove 322 in a staggered manner as previously described. Preferably, one or more (or each) of slots 342 is positioned adjacent to a respective groove 322 such that the slot 342 is at least partially (in some such embodiments, fully) aligned with the respective groove 322 so that relatively little or none of the groove 322 is blocked by material of the slotted layer 340.
(27) Unlike antenna assembly 100, antenna assembly 300 is shown with a third and/or middle layer positioned in between block 310 and slotted layer 340, namely layer 350. In preferred embodiments, layer 350 comprises an adhesive layer. Adhesive layer 350 may be made up of, for example, an adhesive tape, such as a conductive adhesive tape, or another suitable, preferably conductive material. In other embodiments, adhesive layer 350 may be defined by one or more soldered regions.
(28) As shown in
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(30) In some embodiments, one or more of the PCBs, or a single layer comprising a PCB, may be coupled to block 310 by providing a patch. In some such embodiments, the patch may comprise an array of posts that may, form a partial waveguide so that the PCB and block/casting together may form a waveguide. Alternatively, the posts of this patch may be replaced by continuous walls and/or grooves that may be partially or fully aligned with similar features in the block/casting and/or other layers in the assembly.
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(32) Thus, block 610 comprises a first side 612 defining a first array of waveguide grooves 622 and a second side 614 defining a second array of waveguide grooves 622. Each of the waveguide grooves 622 of side 612 may at least partially overlap with a respective groove 622 of side 614. In some such embodiments, each of the waveguide grooves 622 of side 612 may be aligned with a respective groove 622 of side 614, as shown in
(33) As also previously mentioned in connection with other embodiments, various layers may be provided to one or both sides of block 610. Thus, as shown in
(34) Layer 650 or, in other embodiments, a suitable adhesive, solder, and/or fasteners, may be used to apply layer 640 to antenna block 610. Layer 640 may comprise, for example, a conductive plate that may comprise a plurality of slots 642. Slots 642 may be smaller than the openings 652 of layer 652 if desired and may be used to direct RF signals or the like therethrough. It is also contemplated that any of the disclosed slots may, in alternative embodiments, be sized differently or not provided. For example, in some embodiments, layer 650 may lack slots altogether.
(35) In the embodiment depicted in
(36) In some embodiments and related manufacturing methods, a sub-assembly comprising a plurality of layers forming a self-contained weather seal or “sticker” may be provided. For example, all three of layers 640, 650, and 660 may be formed during manufacturing in a sandwich configuration that may be simply applied to the top of the antenna block 610 by use of an adhesive. In some such embodiments, the adhesive may be part of the sandwich assembly so that the weather seal assembly may be applied to antenna block 610 similar to a sticker. Of course, in some embodiments, less than all of the layers depicted in
(37) To further facilitate such mounting, one or more mounting features may be provided to facilitate mounting or other coupling to a vehicle. For example, the depicted embodiment comprises mounting tabs 615/617. Mounting tabs 615 and 617 may, in some embodiments, comprise integral components of antenna block 610. Thus, in embodiments in which antenna block 610 comprising a casting, mounting tabs 615 may be part of a mold used to manufacture this casting. This may provide simplicity by allowing for formation of mounting features on assembly 610 without requiring separate coupling of such features to the assembly. However, of course, in alternative embodiments mounting tabs and/or features may be separately attached to the assembly 610. It should also be understood that, whereas two opposing mounting tabs 615/617 are shown in the embodiment of
(38) Both of mounting tabs 615/617 further comprise a mounting feature configured to engage a corresponding mounting feature on a vehicle. In the depicted embodiment, these mounting features comprise openings 618, which may be threaded so as to receive a bolt or other threaded fastener therethrough. However, a wide variety of alternative mounting features are contemplated, including snap-fit prongs, grooves, or other snap-fit coupling elements, mounting brackets, and mounting fasteners or other mounting posts that may be received within a corresponding opening of a vehicle.
(39) On side 614 of antenna block 610, other layers similar to those on side 612 may be provided. Thus, layer 680 may be used to couple a PCB layer 670 to antenna block 610. Layer 680 may be similar to layer 650 and may therefore comprise another conductive tape or other conductive adhesive layer, such as a solder layer. PCB layer 670 may comprise, for example, an FR-4 PCB material, which may form a top of the waveguides defined by antenna block 610 and related structures described above.
(40) Assembly 600 further comprises a cover 690, which may be used to provide additional structure to the assembly and/or to provide a seal to the lower portion of the assembly. In the depicted embodiment, cover 690 comprises a frame 692 that may be used to provide the foundation for enclosing the elements/layers coupled to the lower surface 614 of antenna block 610 and/or provide this seal. Thus, frame 692 of cover 690 is coupled to antenna block 610 such that at least a portion of the antenna block 610 is recessed within cover 690.
(41) In preferred embodiments, and in preferred implementations of methods for manufacturing, cover 690 and, more particularly, frame 692 of cover 690 in even more preferred embodiments and implementations, may be crimped to antenna block 610. More particularly, antenna block 610 may comprise one or more recesses, such as recess 616, within which the cover 690 and/or frame 692 may be crimped or otherwise coupled to antenna block 610. In some embodiments, recess 616 may comprise an annular recess such that cover 690 is crimped to antenna block 610 about a full perimeter of block 610. Following this crimping, rim 694 is formed, which sits within recess 616 to couple cover 690 to the antenna block 610. In some embodiments, frame 692 may comprise an aluminum or other suitable material that preferably may be crimped, bent, molded, such as by forming rim 694, as mentioned.
(42) Cover 690 may further comprise a shell 695, which may define a seal (preferably a water/weatherproof seal) for cover 690. In some embodiments and implementations, shell 695 may comprise a sealant, such as a potting compound or other material that may be applied to the exterior surface of shell, preferably, again, in a manner so as to provide a liquid seal, such as by overmolding shell 695 to the assembly. Thus, in some embodiments, the sealant/overmolding may be applied so as to extend into recess 616 and/or other crevices or other features of the assembly to provide a suitable seal for the intended purpose of the assembly.
(43) As shown in
(44) Various other standard elements may be provided as needed, such as electrical connector 605. Although not shown or described in detail, electrical connector 605, or a cord/wire associated with electrical connector may, in some embodiments, extend through cover 690.
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(46) Block 710 comprises an array of antennae structures that may be used to at least partially define a plurality of antennae for a vehicle RADAR or other sensor assembly. In some embodiments, one or more ridges 725 may be positioned within each groove 722 to further define the waveguides as desired. Although not shown in
(47) The embodiment of
(48) An upper slotted layer 740 is coupled to block 710 adjacent to side 712. Slotted layer 740 may be similar to slotted layer 140 and may therefore comprise a plurality of rows of slots 740 corresponding to the rows of grooves 722 and/or other antennae structures. A middle layer 750, which may comprise an adhesive layer, is positioned in between block 710 and slotted layer 740. Middle/adhesive layer 750 may be made up of, for example, an adhesive tape, such as a conductive adhesive tape, or another suitable, preferably conductive material. In other embodiments, adhesive layer 750 may be defined by one or more soldered regions.
(49) As also depicted in
(50) A top layer 760 may also be applied to antenna block 710, which as previously mentioned, may comprise a plastic film or other non-conductive material. In some such embodiments, layer 760 may comprise an adhesive plastic film. Again, this layer may be used to provide a radome or liquid/weather seal to the assembly 700.
(51) In some embodiments and related manufacturing methods, a sub-assembly comprising a plurality of layers forming a self-contained weather seal or “sticker” may be provided. For example, all three of layers 740, 750, and 760 may be formed during manufacturing in a sandwich configuration that may be simply applied to the top of the antenna block 710 by use of an adhesive. In some such embodiments, the adhesive may be part of the sandwich assembly so that the weather seal assembly may be applied to antenna block 710 similar to a sticker. Of course, in some embodiments, less than all of the layers depicted in
(52) Assembly 700 further comprises another layer 780, which may be similar or identical to layer 740, adjacent to side 714. Layer 780 may also comprise a plurality of slots or openings (not visible in
(53) To facilitate mounting of assembly 700 to a vehicle, one or more mounting features may be provided to facilitate mounting or other coupling to a vehicle. For example, the depicted embodiment comprises mounting tabs 715/717. These mounting may, in some embodiments, comprise integral components of antenna block 710. Mounting tabs 615/617 may further comprise one or more mounting features configured to engage a corresponding mounting feature on a vehicle. In the depicted embodiment, these mounting features comprise posts or studs 718, which may be threaded in some embodiments. However, again, a wide variety of alternative mounting features are contemplated, including threaded holes, snap-fit prongs, grooves, or other snap-fit coupling elements, mounting brackets, and other mounting or other coupling elements.
(54) Assembly 700 further comprises a PCB layer 770 that may be coupled to surface 714 of block 710. PCB layer 770 may comprise, for example, an FR-4 PCB material, which may form a top of the waveguides defined by antenna block 710 and related structures described above. The various components/layers on this side may be enclosed within a casing or cover 790, which may be used to provide additional structure to the assembly and/or to provide a seal to the lower portion of the assembly. In the depicted embodiment, cover 790 comprises a frame 792 that may be used to provide the foundation for enclosing the elements/layers coupled to the lower surface 714 of antenna block 710 and/or provide this seal. Thus, frame 792 of cover 790 is coupled to antenna block 710 such that at least a portion of the antenna block 710 is recessed within cover 790.
(55) In preferred embodiments, and in preferred implementations of methods for manufacturing, cover 790 and, more particularly, frame 792 of cover 790 in even more preferred embodiments and implementations, may be crimped to antenna block 710. More particularly, antenna block 710 may comprise one or more recesses, such as recess 716, within which the cover 790 and/or frame 792 may be crimped or otherwise coupled to antenna block 710.
(56) Following the aforementioned crimping, rim 794 may be formed, which sits within recess 716 to provide a rigid coupling between cover 790 and block 710. In some embodiments, frame 792 may comprise an aluminum or other suitable material that preferably may be crimped, bent, molded, such as by forming rim 794, as mentioned.
(57) Cover 790 may further comprise a shell 795, which may define a seal (preferably a water/weatherproof seal) for cover 790. In some embodiments and implementations, shell 795 may comprise a potting compound or other sealant material that may be applied to the exterior surface of shell, preferably, again, in a manner so as to provide a liquid seal, such as by overmolding shell 795 to the assembly. Thus, in some embodiments, the sealant/overmolding may be applied so as to extend into recess 716 and/or other crevices or other features of the assembly to provide a suitable seal for the intended purpose of the assembly.
(58) Although not shown in the figure, various other standard elements may be provided as needed, such as an electrical connector, cords, wires, receivers, transmitters, or other desired components.
(59) The foregoing specification has been described with reference to various embodiments and implementations. However, one of ordinary skill in the art will appreciate that various modifications and changes can be made without departing from the scope of the present disclosure. For example, various operational steps, as well as components for carrying out operational steps, may be implemented in various ways depending upon the particular application or in consideration of any number of cost functions associated with the operation of the system. Accordingly, any one or more of the steps may be deleted, modified, or combined with other steps. Further, this disclosure is to be regarded in an illustrative rather than a restrictive sense, and all such modifications are intended to be included within the scope thereof. Likewise, benefits, other advantages, and solutions to problems have been described above with regard to various embodiments. However, benefits, advantages, solutions to problems, and any element(s) that may cause any benefit, advantage, or solution to occur or become more pronounced, are not to be construed as a critical, a required, or an essential feature or element.
(60) Those having skill in the art will appreciate that many changes may be made to the details of the above-described embodiments without departing from the underlying principles of the invention. The scope of the present inventions should, therefore, be determined only by the following claims.