The invention relates to the technical field of millimeter-wave radio frequency antennas, in particular to a ridge gap waveguide millimeter-wave crossover bridge structure device and a center-structure module for the same.
In recent years, millimeter waves have received extensive attention and research due to their obvious advantages. The advantages of millimeter waves include rich spectrum resources, good directivity, available frequency bandwidth, and short wavelength. In addition, it is easier for millimeter-wave devices to achieve miniaturization and integration. Millimeter-wave applications are comprehensive, not only used in industrial automation, telemedicine, aviation, and communications, but also in mobile communications coverage, such as 5G (fifth generation) communications. Millimeter-wave is an important part of 5G communication system, and millimeter-wave has great potential in 5G communication system. Therefore, devices based on millimeter-wave technology will also be more favored.
As the complexity and component density of millimeter-wave circuits continue to increase, millimeter-wave devices tend to be more and more miniaturized and integrated. At present, in an antenna and beamforming network, the crossover bridge structure is an indispensable part. The crossover bridge structure can be used for signal distribution and selection, and for the development of high-performance orthogonal transmission circuits. It is characterized in that in the same planar structure, when two signals inevitably cross each other's path (two signal paths cross each other), the crossover bridge structure can have high transmission and high isolation at the same time. In the related art, a variety of crossover bridge structures can be designed using microstrip line technology. However, the existing crossover bridge structures have problems such as difficulty in manufacturing, excessive insertion loss, and poor transmission effect.
The purpose of the present invention is to provide a ridge gap waveguide millimeter-wave crossover bridge structure device and a center-structure module to reduce the insertion loss of the crossover bridge structure, improve the transmission effect of the crossover bridge structure, and reduce the processing difficulty of the crossover bridge structure. The specific technical solutions are as follows:
In order to achieve the foregoing objective, the embodiment of the invention provides a ridge gap waveguide millimeter-wave crossover bridge structure device, which includes: an upper planar metal plate and a bottom planar metal plate arranged in parallel; a supporting structure fixedly arranged between the upper planar metal plate and the bottom planar metal plate; a ridge waveguide fixed on the surface of the bottom planar metal plate facing the upper planar metal plate, with an air gap between the upper planar metal plate and the ridge waveguide. The ridge waveguide includes two transmission lines arranged crosswise and four impedance transformation structures respectively connected to the ends of the two transmission lines. The distal end of each of the impedance transformation structures away from the connected transmission line is used to connect with external test equipment for testing the performance of the device.
Four input ports are opened in the bottom planar metal plate and are each located around the side of a respective impedance transformation structure away from the connected transmission line.
A plurality of metal pins are fixed on the surface of the bottom planar metal plate facing the upper planar metal plate with an air gap between the upper planar metal plate and the metal pins, and are evenly arranged around the edges of the ridge waveguide to form a wave stop-band.
The two transmission lines arranged in a crisscross pattern form four corners or intersecting angles around the area where the two transmission lines cross each other; among them, two of the diagonally opposite corners are chamfered with a chamfer edge.
Some embodiments further include two pins fixed on the surface of the bottom planar metal plate facing the upper planar metal plate, and the height of the two pins is the same as the height of the plurality of metal pins. The two pins each include a surface opposite to the chamfer edge of one of the chamfered corners.
In some embodiments, the chamfer edge has an inclined surface. The two pins are each in the shape of a triangular prism with one of the side surfaces opposite to the inclined surface of the chamfer edge of one of the chamfered corners.
In some embodiments, the impedance transformation structures each includes a first transformation sub-structure and a second transformation sub-structure. One end of the first transformation sub-structure is connected to the transmission line, the other end is connected to one end of the second transformation sub-structure, and the other end of the second transformation sub-structure (corresponding to the distal end of the impedance transformation structure) is used to connect to the external test equipment.
The width of the transmission line, the size of the first transformation sub-structure parallel to the width direction of the transmission line, and the size of the second transformation sub-structure decreases sequentially in the direction parallel to the width of the transmission line.
In some embodiments, the junction between the first transformation sub-structure and the transmission line has a rounded or chamfered corner.
In some embodiments, the supporting structure includes a plurality of supporting pins. The plurality of the supporting pins are fixed on the surface of the bottom planar metal plate facing the upper planar metal plate, and are distributed over the outer corners of the bottom planar metal plate. Alternatively, the plurality of the supporting pins are fixed on the surface of the upper planar metal plate facing the bottom planar metal plate, and are distributed over all the corners of the upper planar metal plate.
In order to achieve the foregoing objective, the embodiment of the invention also provides a center-structure module for the above-mentioned ridge gap waveguide millimeter-wave crossover bridge structure devices, including: an upper planar metal plate and the bottom planar metal plate arranged in parallel; a ridge waveguide fixed on the surface of the bottom planar metal plate facing the upper planar metal plate with an air gap between the upper planar metal plate and the ridge waveguide; and a plurality of metal pins fixed on the surface of the bottom planar metal plate facing the upper planar metal plate and evenly arranged around the edges of the ridge waveguide to form a wave stop-band, with an air gap between the upper planar metal plate and the metal pins. The ridge waveguide includes two transmission lines arranged in a crisscross pattern to define four corners around the area where the two transmission lines cross each other, including two diagonally opposite chamfered corners. The center-structure module may have four wave port feeding pieces respectively connected to the two transmission lines.
In the ridge gap waveguide millimeter-wave crossover bridge structure device and the center-structure module provided by the present invention, the plurality of metal pins fixed on the bottom planar metal plate and evenly arranged around the ridge waveguide are used to form a wave stop-band; the air gap between the upper planar metal plate and the transmission line is used by electromagnetic waves as the propagation medium to transmit along the crosswise arranged transmission lines. Therefore, the crossover bridge structure device according to the present invention reduces the leakage of electromagnetic waves, improves the transmission effect of the crossover bridge structure, and reduces the insertion loss of the crossover bridge structure.
Of course, implementing any product or method of the present invention does not necessarily need to achieve all the advantages described above at the same time.
In order to more clearly illustrate the embodiments of the invention, the accompanying drawings used in the description of the embodiments are briefly introduced.
The technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings of the embodiments of the present invention.
In order to reduce the insertion loss of the crossover bridge structure, improve the transmission effect of the crossover bridge structure, and reduce the processing difficulty of the crossover bridge structure, the present invention provides a ridge gap waveguide millimeter-wave crossover bridge structure device. With reference to
an upper planar metal plate 1 and a bottom planar metal plate 2 arranged in parallel;
a supporting structure 3 fixedly arranged between the upper planar metal plate 1 and the bottom planar metal plate 2;
a ridge waveguide 4 fixed on the surface of the bottom planar metal plate 2 facing the upper planar metal plate 1, with an air gap between the upper planar metal plate 1 and the ridge waveguide 4; and a plurality of metal pins 5 fixed on the surface of the bottom planar metal plate 2 facing the upper planar metal plate 1 and evenly arranged around the edges of the ridge waveguide 4 to form a wave stop-band, with an air gap between the upper planar metal plate 1 and the metal pins 5.
The ridge waveguide 4 includes two transmission lines 41 arranged crosswise and four impedance transformation structures 42 fixedly connected to the ends of the two transmission lines 41, respectively. The distal end of each of the four impedance transformation structures 42 away from the connected transmission line 41 is used to connect with external test equipment for testing the performance of the device. It is noted that the each of the transmission lines is a structure having a height and a width, and is not a “line” in the strict sense.
Furthermore, as shown in
In the embodiment of the present invention, as shown in
The ridge waveguide 4 includes two transmission lines 41, which are arranged crosswise to realize the cross transmission of electromagnetic waves. The ridge waveguide 4 is used to transmit electromagnetic waves in the quasi-TEM mode. When the transmitted electromagnetic waves of the ridge waveguide 4 is fed from an external test equipment, the electromagnetic waves are in the TE mode. Therefore, an impedance transformation structure 42 is connected to each end of each of the two transmission lines 41, and the impedance transformation structure 42 is used to realize the transformation of the electromagnetic wave from the TE mode to the quasi-TEM mode. It is noted that the present invention does not specifically limit the manner in which the ridge waveguide 4 and the bottom planar metal plate 2 are connected.
In the embodiment of the present invention, as shown in
In the embodiment of the present invention shown in
The height of the metal pin 5 can be set according to actual needs. The height of the metal pin 5 can be higher than the height of the ridge waveguide 4, or lower than or equal to the height of the ridge waveguide 4, which is not specifically limited.
In the above-mentioned ridge gap waveguide millimeter-wave crossover bridge structure device, the ridge waveguide 4 includes two transmission lines 41 and four impedance transformation structures 42. One end of each of the impedance transformation structure 42 is connected to the associated transmission line 41, and the other end is used to connect to an external test equipment for testing the performance of the ridge gap waveguide millimeter-wave crossover bridge structure device through the impedance transformation structure 42. A plurality of metal pins 5, as shown in
In some embodiments of the present invention, the two transmission lines 41 are arranged in a crisscross pattern (for example, in the shape of a cross as shown in
In some embodiments of the present invention, the ridge gap waveguide millimeter-wave crossover bridge structure device further includes two pins 6 fixed on the surface of the bottom planar metal plate 2 facing the upper planar metal plate 1, and the height of the two pins 6 is the same as the height of the metal pins 5 as shown in
Because two diagonally opposite corners are chamfered, the shapes of the two corners are changed. More importantly, since there are no metal pins 5 to block electromagnetic wave leakage in the vicinity of the chamfer edge 43, the addition of the pins 6 matching the shape of the chamfer edge 43 near the chamfer edge 43 can effectively prevent the electromagnetic wave passing through the chamfer edge 43 from leaking, and further improve the transmission effect of the crossover bridge structure.
In some embodiments of the present invention, the chamfer edge 43 may have an inclined surface, such as one inclined at 45-degree. The two pins 6 each have a triangular prism shape with one side surface matching the inclined surface of the chamfer edge 43, and placed opposite to the chamfer edge 43. In order to facilitate processing, the shape of the pins 6 can also be set to a right-angled triangular prism.
The performance of the ridge gap waveguide millimeter-wave crossover bridge structure device of the present invention will be presented in detail below in conjunction with the simulation results of insertion loss, isolation, and return loss.
It can be seen from
In some embodiments of the present invention, the impedance transformation structure 42 (
In the embodiment of the present invention as shown in
In practice, the values of c1, c2, and c3 can be set according to actual conditions, which are not specifically limited in the embodiment of the present invention. In an example as shown in
In some embodiments of the present invention as shown in
In some embodiments of the present invention, the upper planar metal plate 1 and the bottom planar metal plate 2 are both shaped in a crisscross pattern, for example, in the shape of a cross, as shown in
In the embodiment of the present invention shown in
In some embodiments of the present invention, the supporting structure 3 includes a plurality of supporting pins 31 (
In the embodiment of the present invention, when the supporting pins 31 are fixed on the bottom planar metal plate 2, a first screw hole 32 (
In the embodiments of the present invention, when the ridge gap waveguide millimeter-wave crossover bridge structure device according to the embodiment of the present invention is tested, the ridge gap waveguide millimeter-wave crossover bridge structure device needs to be fixed on a test flange (not shown). To accomplish this, a plurality of threaded blind holes 22 can be provided on the surface of the bottom planar metal plate 2 facing away from the upper planar metal plate 1, as shown in
In order to reduce the insertion loss of the crossover bridge structure, improve the transmission effect of the crossover bridge structure, and reduce the processing difficulty of the crossover bridge structure, the present invention also provides a center-structure module, which may be used in the above-mentioned ridge gap waveguide millimeter-wave crossover bridge structure device. As shown in
an upper planar metal plate 1 and the bottom planar metal plate 2 arranged in parallel;
a ridge waveguide 4′ fixed on the surface of the bottom planar metal plate 2 facing the upper planar metal plate 1 with an air gap between the upper planar metal plate 1 and the ridge waveguide 4′; and
a plurality of metal pins 5 fixed on the surface of the bottom planar metal plate 2 facing the upper planar metal plate 1 and evenly arranged around the edges of the ridge waveguide 4′ to form a wave stop-band, with an air gap between the upper planar metal plate 1 and the metal pins 5.
The ridge waveguide 4′ includes two transmission lines 41 arranged in a crisscross pattern, defining four corners or intersecting angles around the area where the two transmission lines cross each other. Two diagonally opposite ones of the four corners are chamfered and each have a chamfer edge 43 as shown in
In addition to the center-structure module described above,
When electromagnetic waves are passed to the above-mentioned center-structure module, a plurality of metal pins 5 are fixed on the bottom planar metal plate 2 and are evenly arranged around the ridge waveguide 4 to form a wave stop-band. The air gap is formed between the upper planar metal plate 1 and the transmission line 41, so that the electromagnetic wave is transmitted along the cross-placed transmission line 41 using air as the propagation medium, which reduces electromagnetic wave leakage and has a better transmission effect and lower insertion loss.
It can be seen that when the center frequency of the center-structure module is 46.5 GHz and the preset working frequency range is 42 GHz-51 GHz (that is, the bandwidth is 9 GHz), the relative bandwidth of the center-structure module is about 19.35%, which is relatively wide. In the working frequency range of 42.61 GHz-50.57 GHz (corresponding to bandwidth 7.96 GHz), the relative bandwidth of the center-structure module is about 17.11%, the return loss and the second isolation are both lower than −19 dB, and the insertion loss is higher than −0.5 dB. Further, it can be seen that the center-structure module has the advantages of high relative bandwidth, high isolation, high return loss, and low insertion loss.
In addition, the center-structure module can be extended to form other devices with center-structure module. The center-structure module can also be used for Butler Matrix component to form a multi-beam antenna based on Butler Matrix components.
It should be noted that in the description above, relational terms such as first and second are only used to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Moreover, the terms “including” or any other variation are intended to cover nonexclusive inclusion, so that a process, method, article or device that includes a series of elements includes not only those elements, but also other elements that are not explicitly listed, or elements inherent in such process, method, article or device. Without further limitation, the element defined by the sentence “including a . . . ” does not exclude the existence of other identical elements in the process, method, article or equipment including the element.
The above description is only a preferred embodiment of the invention and is not intended to limit the protection scope of the invention. Any modification, equivalent replacement, improvement, etc. made within the spirit and principles of the invention are included in the protection scope of the invention.
Number | Date | Country | Kind |
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202011319497.5 | Nov 2020 | CN | national |
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