MODULAR BUILDING BLOCK SYSTEM FOR RF AND MICROWAVE DESIGN OF PRODUCTION ASSEMBLIES
An RF signal processing system including multiple drop-in modular circuit blocks is disclosed. The drop-in modular circuit blocks include input and output launches exhibiting the same launch geometry. The RF system may include a conductive plate with a grid of holes disposed on the conductive plate. Multiple modular blocks may be installed on the conductive plate to form a cascade of modular blocks that exhibit common launch geometries. The cascade may include an RF probe with a projection and conductive pin that overhang a portion of a launch of a modular block at an end of the cascade. Flex connects may be disposed on, and held in position by, anchors to connect adjacent modular blocks together in a prototype system. A production RF system may exhibit the same overall geometry as a prototype RF system to speed up the transition from prototype design to production design.
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This patent application is a Divisional Application of, and claims priority to, Non-Provisional U.S. patent application Ser. No. 14/932,957, filed Nov. 4, 2015, entitled “MODULAR BUILDING BLOCK SYSTEM FOR RF AND MICROWAVE DESIGN OF COMPONENTS AND SYSTEMS FROM CONCEPT TO PRODUCTION”, which claims priority to Provisional U.S. Patent Application No. 62/074,887, filed Nov. 4, 2014, entitled “SYSTEMS AND METHODS FOR MODULAR RADIO FREQUENCY AND MICROWAVE COMPONENTS AND INTEGRATED MICROWAVE ASSEMBLIES” by inventors Richardson, et al. and assigned to the assignee hereof, the disclosure of which is incorporated herein by reference in its entirety.
BACKGROUNDThe disclosures herein relate generally to radio frequency (RF) signal apparatus and more particular to RF systems that may employ multiple stages. It is desirable to simplify the design, prototyping and manufacture of RF system products.
BRIEF SUMMARYIn one embodiment, a radio frequency (RF) signal probe is disclosed. The radio frequency (RF) signal probe may include a body including first and second surfaces. A jack extends from the first surface, the jack being adapted to receive a connector that mates therewith. A projection extends from the second surface, the projection being shaped to overhang a launch portion of an electrical component when the electrical component is situated adjacent the RF signal probe. In one embodiment, the RF probe also includes a channel below the projection, the RF probe including a connective element situated in the channel and overhanging the launch portion of the electrical component. In another embodiment the connective may be a connective pin. In one embodiment, the projection is fabricated of electrically conductive material that is adapted to couple to a ground of the launch portion of the electrical element. In another embodiment, the body of the RF probe includes a plurality of holes that are positioned to align with a corresponding plurality of holes in an electrically conductive member situated below the body.
In another embodiment, a high frequency radio frequency (RF) connection apparatus is disclosed. The apparatus may include a first board including a first launch, the first launch including a first plurality of conductors. The apparatus may include a second board having a second launch, the second launch including a second plurality of conductors, wherein the first launch is situated adjacent the second launch. The apparatus may also include a flex connector having a plurality of flex conductors, the flex connector being positioned at the first and second launches to connect the first plurality of conductors to the second plurality of conductors. In one embodiment, the first launch of the first board and the second launch of the second board may exhibit the same launch geometry. In one embodiment, the apparatus further includes an electrically conductive plate including a plurality of holes extending into the plate. The plurality of holes of the plate may be arranged in a grid pattern. In one embodiment, the apparatus may include anchors to hold the flex connector in place to enhance the connection of the flex connector to the first and second launches.
In yet another embodiment, a high frequency radio frequency (RF) connection apparatus is disclosed. The apparatus may include an electrically conductive housing including a housing floor, first and second opposed ends, and opposed housing sides. The housing may include a plurality of holes extending into the housing, the plurality of holes including first and second holes adjacent the first opposed end of the housing. A modular board may be situated atop the housing floor, the board including a first launch disposed adjacent the first end of the housing, the board including first and second board holes aligned with the first and second holes of the housing adjacent the first end of the housing. An end connector may be situated external to the housing at the first opposed end of the housing, the end connector including a conductive pin that extends through an opening in the first opposed end of the housing and into the interior of the housing above the first launch of the board. The apparatus may include a pin bridge situated at the first launch, the pin bridge including a channel through which the conductive pin extends to contact a signal conductor of the first launch of the board, the pin bridge providing an electrically conductive path between a ground conductor of the first launch and the adjacent wall of the housing. In one embodiment, the pin bridge includes first and second opposed ends and first and second pin bridge holes adjacent the first and second opposed ends, respectively.
In still another embodiment, a system is disclosed that includes a conductive plate including a grid pattern of holes extending into the plate from a first surface thereof. The system may include a plurality of circuit board modules each including respective input and output launches, the input and output launches exhibiting the same launch geometry. In one embodiment, the plurality of circuit board modules are cascaded across the conductive plate to form a circuit board module cascade with an input launch at one end of the circuit board module cascade and an output launch at a remaining end of the circuit board module cascade. In one embodiment, the plurality of circuit board modules including holes aligned with holes of the plurality of holes, the circuitry board modules being removably screwed to the conductive plate via screws through aligned holes of the circuit board modules and corresponding holes of the conductive plate below.
In yet another embodiment, a method includes providing a conductive plate including a grid pattern of holes extending into the plate from a first surface thereof. The method also includes configuring a plurality of circuit board modules each including input and output launches, the input and output launches exhibiting the same launch geometry. The method further includes cascading the plurality of circuit board modules across the conductive plate to form a circuit board module cascade with an input launch at one end of the circuit board module cascade and an output launch at a remaining end of the circuit board module cascade. The method also includes removably attaching each circuit board module of the circuit board module cascade to the conductive plate via screws passing through holes in each of the circuit board modules to corresponding aligned holes in the conductive plate.
The appended drawings illustrate only exemplary embodiments of the invention and therefore do not limit its scope because the inventive concepts lend themselves to other equally effective embodiments.
In one embodiment, an RF probe for an RF system including one or more modular drop-in blocks is disclosed. The RF probe and modular block may be situated on a conductive plate including a grid of threaded holes in one embodiment. The RF probe and modular block may be removably attached to the plate via screws coupling the RF probe and modular block to the holes in the conductive plate below. The RF probe includes a connector pin that extends from the RF probe and overhangs at least a portion of a launch at the modular block to electrically and mechanically couple the connector pin to a conductor in the launch of the modular block. A solderless connection between the connector pin and the launch of the modular block is thus provided. In one embodiment, an RF probe for connection to modular drop-in blocks as part of a modular system is disclosed. The RF probe and modular block may be situated on a conductive plate (or housing floor) including a grid of threaded holes in one embodiment. The RF probe and modular block may be independently removably attached to the plate via screws coupling the RF probe and modular block to the holes in the conductive plate below. A feature of the RF probe includes a connector pin and a boss consisting of two ground contact surfaces that extend from the RF probe and overhang at least a portion of a launch of a modular block to electrically and mechanically couple the connector pin and ground surfaces to a launch of a modular block. In one embodiment a solderless Ground-Signal-Ground connection between the probe connector and the launch of the modular block is thus provided.
In another embodiment, the RF system includes multiple modular blocks coupled to one another to form a cascade of modular blocks. Each modular block includes an input launch and an output launch. A multiple conductor flex connector couples the output launch of one modular block to the input launch of an adjacent modular block in the cascade. Respective removable anchors hold the opposite ends of the flex connector to the output launch of one modular block and the input launch of the adjacent modular block in the cascade. Modular wall and lid pieces may form a prototype housing for the cascade in one embodiment.
In yet another embodiment, the cascade may be removed from the prototype housing and installed in a machined housing, such as a production housing. In this case the production housing exhibits the same geometry as the prototype housing. A panel mount connector is installed at one end of the housing. The panel mount connector includes a connector pin that extends through an opening in the housing to the interior of the housing. A panel mount connector may be installed at each end of the housing.
In still another embodiment, a prototyping system with drop-in modular blocks is provided. The system includes a conductive plate with a grid pattern of holes extending into at least one surface of the conductive plate. In another embodiment, the holes may extend all the way through the plate between the opposed surfaces thereof. The system may include multiple drop-in modular blocks, wherein each modular block includes an input launch and an output launch. The modular blocks are oriented to form a cascade in which the input launch of one modular block is at one end of the cascade and the output launch of another modular block is at the remaining end of the cascade. Within the cascade, the output launch of one modular block is coupled to the input launch of an adjacent modular block. The input launches and output launches of the modular blocks exhibit the same geometry so that they are readily connected together from one modular block to an adjacent modular block in the cascade.
The modular blocks are removably coupled to the conductive plate via anchors employing screws extending through the anchors, through the modular blocks and into the holes in the conductive plate below. An input RF probe is removably attached to the input launch of the modular block at one end of the cascade and the conductive plate below. An output RF probe is removably attached to the input launch of the modular block at one end of the cascade and the conductive plate below. The prototyping system includes modular wall pieces and modular lid pieces that form a removable prototype housing above the cascade of modular blocks. In this manner, a prototype RF system is provided. The cascade need not be a straight line of modular blocks. The cascade could exhibit other geometries such as L-shaped, Z-shaped or other geometry.
After the prototype RF system is created in the manner described above, a production RF system is readily created in the manner now described. To form a production RF system from the prototype RF system, the removable wall pieces and lid pieces of the prototype housing are removed from the cascade of modular blocks. The cascade of modular blocks is then placed in a production housing such as a machined housing that exhibits the same geometry as the prototype housing. The multiple modular blocks of the cascade may be combined into a common board that includes the electrical circuits of the modular blocks of the cascade. The common board may be a single board that includes the electrical circuits of the modular blocks of the cascade. The common board exhibits the same geometry as the cascade. In this manner, the common board may be readily mounted in a production housing that exhibits the same dimensions as the prototype housing. In this manner, the designer may avoid extensive redesign of the modular blocks and housing when moving from a prototype design to a production design.
More particularly,
RF probe 505 includes a main body 510 and a threaded jack 515 extending angularly from main body 510 as shown in
In one embodiment, the modular blocks such as block 101 are printed circuit boards fabricated from RO4003 electrically insulative substrate material. In the embodiment of
When the mounting screws (not shown) are placed into holes 511, 512 and threaded into the vertically aligned holes in conductive block 205 below, connective pin 530 is squeezed with sufficient pressure against microstrip line 535 conductor S that a good mechanical and electrical connection is formed between the connective pin 530 and conductor S. Likewise, projection 520 is pressed against ground conductors at the input launch 410 to properly connect the main body 510 to the ground of modular block 101.
The RF probe of
A second connector (not shown) may be connected to jack 515′ of RF probe 505′ to receive the resultant signal generated at the output launch 420 of modular block 101. In this manner, the signal characteristics of drop-in modular block 101 may be determined to aid in prototype design. In this manner, X-parameter models can be accurately determined for each drop-in modular block probed. In actual practice, probes 505 and 505′ are mounted to conductive plate 205 via screws in the holes of the probes that are threaded into respective aligned holes in the conductive plate 205 below.
In one embodiment of the disclosed RF system, multiple modular blocks with different functions each include the same input and output launch geometries. In this manner, these different function modular blocks may be uniformly probed by the same RF probe.
One embodiment of a connection mechanism between output launch 420 of modular block 101 and input launch 460 of modular block 102 is now discussed. Flex connector 580 and anchor 601 (not shown in
While tolerances are held tightly in the manufacture of modular blocks 101 and 102 and other modular blocks, it is possible that the vertical height of the printed circuit board substrate used in these modular blocks may vary slightly. It is thus possible that output launch 420 of modular block 101 is not precisely coplanar with respect to the input launch 460 of adjacent modular block 102. The flexibility of flex connector 580 allows for this differential height variance between the output launch 420 and input launch 460. Anchors, discussed in more detail below with reference to
Referring now to
The prototype cascade 630 is removed from the prototype housing 686 and is situated above a production housing 700 such as a machined housing as shown in
As seen in
Combined board 760 is to be used as a board in a production design ready for the marketplace or other use.
The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention. As used herein, the singular forms “a”, “an” and “the” are intended to include the plural forms as well, unless the context clearly indicates otherwise. It will be further understood that the terms “comprises” and/or “comprising,” when used in this specification, specify the presence of stated features, integers, steps, operations, elements, and/or components, but do not preclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and/or groups thereof.
The corresponding structures, materials, acts, and equivalents of all means or step plus function elements in the claims below are intended to include any structure, material, or act for performing the function in combination with other claimed elements as specifically claimed. The description of the present invention has been presented for purposes of illustration and description, but is not intended to be exhaustive or limited to the invention in the form disclosed. Many modifications and variations will be apparent to those of ordinary skill in the art without departing from the scope and spirit of the invention. The embodiment was chosen and described in order to best explain the principles of the invention and the practical application, and to enable others of ordinary skill in the art to understand the invention for various embodiments with various modifications as are suited to the particular use contemplated.
Claims
1. A radio frequency (RF) system, comprising:
- an electrically conductive housing including a housing floor having a plurality of mounting holes arranged in a grid pattern, the electrically conductive housing including first and second end walls coupled to the housing floor, and first and second side walls coupled to the housing floor;
- a cascade of modular circuit blocks, each modular circuit block including an input launch and an output launch that exhibit the same launch geometry as other modular circuit blocks in the cascade, each modular circuit block including mounting holes aligned with corresponding mounting holes of the electrically conductive housing; and
- a lid situated on the electrically conductive housing such that the floor, first and second end walls, and first and second side walls together form a cavity for the cascade of modular circuit blocks.
2. The RF system of claim 1, wherein the cascade is a prototype cascade.
3. The RF system of claim 1, wherein the electrically conductive housing is a production housing.
4. The RF system of claim 1, further comprising:
- a plurality of mounting screws extending through the mounting holes of the modular circuit blocks and corresponding mounting holes of the electrically conductive housing to hold the modular circuit blocks to the floor of the electrically conductive housing.
5. The RF system of claim 1, wherein the cascade of modular circuit blocks includes an input end and an output end, the RF system further comprising:
- an input connector being situated external to the first end wall of the electrically conductive housing and including a conductive pin that extends through an opening in the first end wall to contact a signal conductor of the input launch of a modular circuit block adjacent the first end wall;
- an output connector being situated external to the second end wall of the electrically conductive housing and including a conductive pin that extends through an opening in the second end wall to contact a signal conductor of the output launch of a modular circuit block adjacent the second end wall.
6. The RF system of claim 5, further comprising:
- a first pin bridge situated at the input launch of the modular circuit block adjacent the first end wall, the first pin bridge including a channel through which the conductive pin of the input connector extends to contact a signal conductor of the input launch of the modular circuit block adjacent the first end wall, the first pin bridge providing an electrically conductive path between the first end wall and a ground conductor of the input launch of the modular circuit block adjacent the first end wall;
- a second pin bridge situated at the output launch of the modular circuit block adjacent the second end wall, the second pin bridge including a channel through which the conductive pin of the output connector extends to contact a signal conductor of the output launch of the modular circuit block adjacent the second end wall, the second pin bridge providing an electrically conductive path between the second end wall and a ground conductor of the output launch of the modular circuit block adjacent the second end wall.
7. The RF system of claim 1, further comprising:
- removable shields between adjacent modular circuit blocks of the cascade, the removable shields including mounting holes that are aligned with corresponding mounting holes in the electrically conductive housing.
8. The RF system of claim 8, wherein the cascade of modular circuit blocks includes first and second modular circuit blocks that each include mounting holes aligned with corresponding mounting holes of the electrically conductive housing, the RF system further comprising:
- a flex jumper including a plurality of flexible conductors having opposed ends, the flex jumper coupling conductors of the output launch of the first modular circuit block to respective conductors of the input launch of the second modular circuit block.
9. The RF system of claim 8, wherein the mounting holes of the first modular circuit block include first and second mounting holes adjacent an output launch of the first modular circuit block, the RF system further comprising:
- a first anchor situated extending across the conductors of the flex jumper at the output launch of the first modular circuit block, the first anchor including first and second mounting holes;
- first and second mounting screws extending through the first and second mounting holes of the first anchor, through the first and second mounting holes of the first modular circuit block and into respective mounting holes of the electrically conductive housing.
10. The RF system of claim 1, wherein the mounting holes of the second modular circuit block include first and second mounting holes adjacent an input launch of the second modular circuit block, the RF system further comprising:
- a second anchor situated extending across the conductors of the flex connector at the input launch of the second modular circuit block, the second anchor including first and second mounting holes;
- first and second mounting screws extending through the first and second mounting holes of the second anchor, through the first and second mounting holes of the second modular circuit block and into respective mounting holes of the electrically conductive housing.
11. The RF system of claim 1, wherein a cross section of the electrically conductive housing exhibits an H geometry, the floor of the electrically conductive housing forming a cross member of the H geometry.
12. The RF system of claim 11, further comprising electrical circuits situated below the floor of the electrically conductive housing.
13. The RF system of claim 12, wherein the electrical circuits include a bias circuit that provides a bias signal to a modular circuit block of the cascade of modular circuit blocks.
14. The RF system of claim 12, wherein the electrical circuits include a control circuit that provides a control signal to a modular circuit block of the cascade of modular circuit blocks.
15. The RF system of claim 12, wherein the electrical circuits include a power source that provides a power signal to a modular circuit black of the cascade of modular circuit blocks.
Type: Application
Filed: Jan 31, 2019
Publication Date: Jun 6, 2019
Applicant: X-MICROWAVE, LLC (Austin, TX)
Inventors: John Dale Richardson (Austin, TX), Raymond Thomas Page (Georgetown, TX)
Application Number: 16/264,448