Waveguide transition between front and rear windows connected by a tapered plate to form upper and lower chambers that define an energy path through the transition
11316239 · 2022-04-26
Assignee
Inventors
Cpc classification
International classification
H01P5/18
ELECTRICITY
Abstract
The present invention features a waveguide transition. A waveguide transition is used to join two dissimilar segments of waveguide, in this case coplanar waveguide to rectangular waveguide, and vice-versa. Care taken during the design of the waveguide transition ensures that the reflection of electromagnetic waves, which may be traveling along the coplanar waveguide segment and toward the waveguide transition and subsequent rectangular waveguide segment, is minimized.
Claims
1. A waveguide transition comprising: A) a container having a front face, a rear face, a front window, and a rear window, wherein the container is electrically conducting, wherein the front window perforates the front face, wherein the rear window perforates the rear face, wherein the rear window has an interface edge; B) a tapered plate having a front edge and a rear edge, wherein the tapered plate is electrically conducting, wherein the tapered plate bisects the container into an upper chamber and a lower chamber, wherein the rear edge connects electrically to the interface edge along the entire extent of the rear edge, wherein the tapered plate extends toward the front face, wherein the tapered plate tapers from the rear edge toward the front edge, wherein the front edge is exposed to the front window; wherein an energy path is created to guide electromagnetic wave energy, wherein the energy path can be traced from the front window through the lower chamber around the tapered plate through the upper chamber to the rear window, wherein the energy path minimizes the reflection of incident electromagnetic wave energy, wherein the energy path maximizes the transmission of incident electromagnetic wave energy.
2. The waveguide transition of claim 1, wherein the container is shaped as a rectangular prism.
3. The waveguide transition of claim 2, wherein the container has a first side barrier and an opposite second side barrier.
4. The waveguide transition of claim 3, wherein the first side barrier comprises a plurality of pillars, wherein the second side barrier comprises a plurality of pillars.
5. The waveguide transition of claim 4, wherein the front face comprises a plurality of pillars, wherein the rear face comprises a plurality of pillars.
6. The waveguide transition of claim 3, wherein the first side barrier is a surface, wherein the second side barrier is a surface.
7. The waveguide transition of claim 6, wherein the front face includes a front surface, wherein the rear face includes a rear surface.
8. The waveguide transition of claim 1, wherein the front window comprises an opening about the front edge.
9. The waveguide transition of claim 1, wherein the extent of the rear edge is less than the extent of the interface edge.
10. The waveguide transition of claim 1, wherein the front window and the rear window have no overlap when viewed along the plane of the tapered plate.
11. The waveguide transition of claim 1, wherein the tapered plate tapers linearly from the front edge to the rear edge.
12. The waveguide transition of claim 1, wherein the tapered plate tapers non-linearly from the front edge to the rear edge.
13. The waveguide transition of claim 1, wherein the front window is rectangular in shape, wherein the rear window is rectangular in shape.
14. The waveguide transition of claim 13, wherein a first side barrier coincides with a first rear lateral edge of the rear window.
15. The waveguide transition of claim 13, wherein a second side barrier coincides with a second rear lateral edge of the rear window.
16. The waveguide transition of claim 13, wherein a first side barrier coincides with a first front lateral edge of the front window.
17. The waveguide transition of claim 13, wherein a second side barrier coincides with a second front lateral edge of the front window.
18. The waveguide transition of claim 1, wherein a distance between the front edge and the rear edge is in the range of ⅕ of a wavelength to ⅗ of a wavelength at an operating frequency.
19. The waveguide transition of claim 1, wherein the upper chamber is fabricated in a planar printed circuit process, wherein the lower chamber is fabricated in a planar printed circuit process.
20. The waveguide transition of claim 8, wherein the opening extends the full height of the upper chamber.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
(1) The features and advantages of the present invention will become apparent from a consideration of the following detailed description presented in connection with the accompanying drawings in which:
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DETAILED DESCRIPTION OF THE INVENTION
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(14) Referring to
(15) In some embodiments, the waveguide transition may comprise a container (100) with a front face (101), a rear face (102), a front window (103), and a rear window (104). In the interest of efficiency and to avoid attenuation of the signal power and field coupling, the waveguide transition contains the electromagnetic wave power that enters the waveguide transition through the front window (103), and permits the electromagnetic wave power to exit only via the rear window (104). Because the waveguide transition joins waveguides on two separate levels, the waveguide transition's front face (101) seals off the front end of the rectangular waveguide segment that mates with the waveguide transition's rear window (104); likewise, the waveguide transition's rear face (102) seals off the rear end of the coplanar waveguide segment that mates with the waveguide transition's front window (103).
(16) The container (100) may be electrically conductive. The containment of electromagnetic wave power and fields is best accomplished by employing electrically conductive materials, typically elemental metals or alloys of copper, gold, silver, nickel, and tin.
(17) The front window (103) may be planar and may perforate the front face (101). The flush mating of the coplanar waveguide segment with the waveguide transition is most easily accomplished when the front window lies in a geometric plane. Again, the flush mating is desirable to avoid attenuation of the signal power and field coupling. This plane also defines the extent of the tapered plate (120) (whose function is inextricable from that of the container (100) in accomplishing the performance of the waveguide transition) within the waveguide transition.
(18) The rear window (104) may perforate the rear face (102) and may have an interface edge (105). Clearly, the electromagnetic wave energy that enters the waveguide transition needs an avenue by which to exit the waveguide transition. That avenue may be the rear window (104), which lies in the rear face (102), and may join by electrical conduction with the tapered plate (120) along the interface edge of the rear window (104).
(19) In some embodiments, the waveguide transition may further comprise a tapered plate (120) with a front edge (121) and a rear edge (122). The tapered plate (120) may play an essential role in interfacing the two dissimilar segments of waveguide, coplanar waveguide and rectangular waveguide. Because the tapered plate (120) may interact strongly with both dissimilar waveguide segments, the tapered plate (120) has a front edge (121) lying in the front window (103), and a rear edge (122) lying in the rear window (104).
(20) The tapered plate (120) may be electrically conducting. The containment of electromagnetic wave power and fields may be best accomplished by employing electrically conductive materials, typically elemental metals or alloys of copper, gold, silver, nickel, and tin.
(21) The rear edge (122) of the tapered plate (120) may electrically connect to the interface edge (105) along the entire extent of the rear edge (122). The rear edge (122) of the tapered plate (120) may join by electrical conduction with the rear window's (104) interface edge (105).
(22) The tapered plate (120) may extend and taper toward the front face (101) from the rear edge (122), bisecting the interior of the container (100) into an upper chamber (130) and a lower chamber (131). The geometric plane including the tapered plate (120) may divide the container (100) roughly in half. The halves may be known as the upper chamber (130) and the lower chamber (131). Because the conductor on the coplanar waveguide segment that joins with the tapered plate may be narrower than the interface edge (105) of the rear window (104), the tapered plate (120) may taper toward the front window (103) and the front face (101). The exact nature of this taper may be a straight line (linear taper), obey some non-linear mathematical description (exponential taper), or be something else.
(23) The front edge (121) may lie in the plane of the front window (103) without touching any edge of the front window (103). Again, the front edge (121) of the tapered plate (120) may not be permitted to touch the boundary of the front window (103), since the coplanar waveguide segment may have two distinct conductors. Additionally, the front edge (121) may reach the center conductor of the coplanar waveguide segment, which may end in the plane of the front window (103).
(24) In some embodiments, an energy path (140) is created to guide electromagnetic wave energy. The entire conception and rationale for creating the waveguide transition may be to create an appropriate energy path (140) that guides electromagnetic energy from the front window (103) to the rear window (104) while minimizing the reflection of electromagnetic waves due to the waveguide transition. The energy path (140) constitutes a continuous connection between the front window (103) and the rear window (104).
(25) As seen in
(26) In some embodiments, the container (100) may be shaped as a rectangular prism. Since rectangular waveguide invariably has a rectangular cross section, and a coplanar waveguide has a parallel ground plane joined to the surface ground plane conductor by perpendicular sidewalls, the natural form for the front window (103) and rear window (104) is rectangular in shape, so the simplest form for the present invention may be that of a rectangular prism. The example embodiment shown in
(27) In some embodiments, the container (100) may have a first side barrier (106) and an opposite second side barrier (107). The first side barrier (106) and the second side barrier (107) may be present when the container (100) is shaped as a rectangular prism. The nature of implementation for the first side barrier (106) and the second side barrier (107) may vary in some embodiments, as may the relative proximities between: the front window (103) and the rear window (104) with respect to the first side barrier (106); and, the front window (103) and the rear window (104) with respect to the second side barrier (107).
(28) In some embodiments, the first side barrier (106) may be a surface, and the second side barrier (107) may be a surface. The first side barrier (106) and second side barrier (107) may be continuous surfaces, for instance, in the case wherein the upper chamber (130) may be derived from a section of tubular rectangular waveguide.
(29) In some embodiments, the first side barrier (106) may comprise a plurality of pillars, and the second side barrier (107) may comprise a plurality of pillars. In the example embodiment shown in
(30) In some embodiments, the front face (101) may be a surface, and the rear face (102) may be a surface. The front face (101) and rear face (102) may be continuous surfaces, for instance, in the case wherein the upper chamber (130) may be derived from a section of tubular rectangular waveguide.
(31) In some embodiments, the front face (101) may comprise a plurality of pillars, and the rear face (102) may comprise a plurality of pillars. In the example embodiment shown in
(32) In some embodiments, as shown in
(33) In some embodiments, the front window (103) may be rectangular, and the rear window (104) may be rectangular. Since rectangular waveguide invariably has a rectangular cross section, and since coplanar waveguide has a parallel ground plane joined to the surface ground plane conductor by perpendicular sidewalls, the natural form for the front window (103) and rear window (104) to take on may be rectangular. The rectangular form for the front window (103) may be augmented by an opening (108), as shown in
(34) In some embodiments, the front window (103) and the rear window (104) may not overlap when viewed along the plane of the tapered plate (120). For the case in which the waveguide transition may have walls of finite thickness, as in the example embodiment of
(35) In some embodiments, the tapered plate (120) may taper linearly from the font edge (121) to the rear edge (122). In the example embodiments shown in
(36) In some embodiments, the tapered plate (120) may taper exponentially from the front edge (121) to the rear edge (122). Although a tapered plate (120) tapering linearly is shown in
(37) In some embodiments, the extent of the rear edge (122) may be less than the extent of the interface edge (105). To the extent that performance of the present invention improves, there is no necessary reason that the rear edge (122) of the tapered plate (120) extend the entire extent of the interface edge (105).
(38) In some embodiments, the first side barrier (106) may coincide with the first rear lateral edge (111) of the rear window (104).
(39) In some embodiments, the second side barrier (107) may coincide with the second rear lateral edge (112) of the rear window (104).
(40) In some embodiments, the distance between the front edge (121) and the rear edge (122) may be in the range of ⅕ of a wavelength to ⅗ of a wavelength at the operating frequency. The waveguide techniques of rectangular waveguide and coplanar waveguide may become useful when the dimensions of the microwave and millimeter wave circuit elements become comparable with a wavelength at the nominal operating frequency of the waveguide structure. For example, at a center frequency of 29.9 GHz in the microwave Ka-band employed in 5G networking, the associated free-space wavelength is given by the speed of light in a vacuum (about 2.99.Math.10.sup.8 m/s) divided by 29.9 GHz, or 1 cm. Performance-improving resonances within structures such as the present invention may occur when the distance between the front edge (121) and the rear edge (122) lie in the range of about ¼ to ½ of a wavelength within the waveguide media. The wavelength of waves guided within waveguide media, such as rectangular waveguide and coplanar waveguide, may differ from the free-space wavelength at the nominal operating frequency; therefore, the example evaluation of the free-space wavelength above is given solely to demonstrate the approximate scale of features of the present invention in a specific case.
(41) In some embodiments, the upper chamber (130) may be fabricated in a planar printed circuit process, and the lower chamber (131) may be fabricated in a planar printed circuit process. Precisely this case may demonstrate the greatest utility of the present invention, as may be seen in
(42) In some embodiments, the first side barrier (106) may coincide with the first front lateral edge (113) of the front window (103).
(43) In some embodiments, second side barrier (107) may coincide with the second front lateral edge (114) of the front window (103).
(44) In some embodiments, the opening (108) may extend the full height of the upper chamber (130). In
EXAMPLE
(45) The following is a non-limiting example of the present invention. It is to be understood that the example is not intended to limit the present invention in any way. Equivalents or substitutes are within the scope of the present invention.
(46) In one example embodiment, a 5G band pass filter implementation comprises two waveguide transition instances as described in the present invention. The example embodiment: is fabricated in a two conductor-layer planar printed circuit technology, wherein the structural dielectric material supporting the printed-circuit board lamina has an effective relative dielectric constant of about 3.0; operates at a center frequency of 28 gigahertz; and is available as a component for solder attachment to a host printed circuit board whose complementary footprint is specified by the product data sheet of this example embodiment. Its container (100): has the form of a rectangular prism; comprises a tapered plate (120) that tapers linearly from rear edge (122) to front edge (121); comprises a front face (101), a rear face (102), a first side barrier (106), and a second side barrier (107), each of which comprises a plurality of pillars; and is separable, and joinable by a soldering operation, along the plane of the tapered plate (120). In the example embodiment, the distance between the front edge (121) and the rear edge (122) of the tapered plate (120) lies in the range of ⅕ of a wavelength to ⅗ of a wavelength at the operating frequency of 28 gigahertz.
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(49) In the center of
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(51) When two of the waveguide transitions of the present invention, plus six waveguide resonator sections, constitute a 5G band pass filter in this example embodiment, the entire system achieves a typical insertion loss of about just 1.45 decibels. Each instance of the present invention, then, contributes no more than half of that. Actually, most of the insertion loss is contributed to the filter itself and almost none of the loss is from the waveguide to coplaner waveguide transitions.
(52) Although there has been shown and described the preferred embodiment of the present invention, it will be readily apparent to those skilled in the art that modifications may be made thereto which do not exceed the scope of the appended claims. Therefore, the scope of the invention is only to be limited by the following claims. In some embodiments, the figures presented in this patent application are drawn to scale, including the angles, ratios of dimensions, etc. In some embodiments, the figures are representative only and the claims are not limited by the dimensions of the figures. In some embodiments, descriptions of the inventions described herein using the phrase “comprising” includes embodiments that could be described as “consisting essentially of” or “consisting of”, and as such the written description requirement for claiming one or more embodiments of the present invention using the phrase “consisting essentially of” or “consisting of” is met.
(53) The reference numbers recited in the below claims are solely for ease of examination of this patent application, and are exemplary, and are not intended in any way to limit the scope of the claims to the particular features having the corresponding reference numbers in the drawings.