Ultra-wideband h-plane waveguide t-junction power divider

By optimizing the structural design of the ultra-wideband H-plane waveguide T-junction power divider, the problem of insufficient bandwidth in the rectangular waveguide HT branch is solved, achieving high impedance bandwidth and good signal consistency, making it suitable for microwave communication systems.

CN119133816BActive Publication Date: 2025-11-25TONGYU COMM INC
View PDF 1 Cites 0 Cited by

Patent Information

Application Number
CN202411493810.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-10-24
Publication Date
2025-11-25
Estimated Expiration
2044-10-24

AI Technical Summary

Technical Problem

The impedance bandwidth of existing rectangular waveguide HT branches is difficult to meet the broadband requirement of more than 64%, and traditional extension methods have problems such as complex structure, large size or difficult processing.

Method used

Design an ultrawideband H-plane waveguide T-junction power divider, including an input rectangular waveguide, a matching rectangular waveguide, a matching cylinder, a rectangular partition, and a tuning cavity. By optimizing the size and positional relationship of these components, equal amplitude and in-phase signal distribution can be achieved.

Benefits of technology

It achieves an impedance bandwidth of over 64.9% with S11≤-20dB, good amplitude and phase consistency of the signal in the 4.44GHz-8.71GHz frequency band, and has a simple structure that is easy to process.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN119133816B_ABST
    Figure CN119133816B_ABST
Patent Text Reader

Abstract

The application discloses an ultra-wideband H-plane waveguide T-junction power divider, which comprises an input rectangular waveguide, a matching rectangular waveguide, a matching cylinder, a rectangular partition, two output rectangular waveguides and two adjusting cavities; the center line of the matching cylinder coincides with the center line where the vertical cross section of the output rectangular wave and the longitudinal cross section intersect, and the bottom surface of the matching cylinder is attached to the bottom surface of the output rectangular waveguide; the rectangular partition is located on the opposite side of the input rectangular waveguide and is embedded from the top to the input rectangular waveguide direction; the two adjusting cavities are located on the opposite side of the input rectangular waveguide and are arranged on the two sides of the rectangular partition; through the above structure, the structure of the power divider is very simple and compact, easy to process, and the impedance bandwidth of the input port S11 is higher than 64.9% in the 4.44GHz-8.71GHz frequency band, and the amplitude and phase consistency of the two output signals in the above frequency band is good, and the power divider has good popularization value.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This invention relates to the field of power dividers, and particularly to an ultrawideband H-plane waveguide T-junction power divider. Background Technology

[0002] A power divider is a device that splits the energy of one input signal into two or more outputs of equal or unequal energy. Conversely, it can combine the energy of multiple signals into a single output, in which case it can also be called a combiner. Power dividers can be classified into various types according to their structure, including microstrip line structures, coaxial structures, dielectric integrated waveguides, and metallic waveguide structures. Among them, the H-plane waveguide T-junction power divider, also known as a rectangular waveguide HT branch, is a commonly used waveguide power / combiner in microwave engineering. The rectangular waveguide HT branch features simple structure, high power capacity, and low insertion loss, and is widely used in power distribution / combining and array antenna feed networks.

[0003] With the advancement of social informatization, emerging services such as network video, cloud computing, big data, and the Internet of Things are placing a surge in demand for the transmission capacity and speed of microwave communication systems, thus imposing increasingly higher bandwidth requirements on microwave antenna feed systems. Traditional rectangular waveguide HT branch impedance bandwidth is narrow; even with methods to extend bandwidth using metal adjusting pins, cones, or metal spacers, the impedance bandwidth with S11≤-20dB typically only reaches about 20%. Existing rectangular waveguide HT branch broadband technologies mainly include Y-junctions and multi-stage stepped impedance matching. The former offers limited bandwidth improvement, typically only reaching about 30% for S11≤-20dB; the latter, due to the introduction of multi-stage impedance transformation, is complex to manufacture and has a large size, often failing to meet miniaturization requirements and thus having certain application limitations. Bandwidth can also be extended by loading rectangular planar matching bosses onto ridge waveguides, with significant results, achieving an impedance bandwidth of 54% for S11≤-20dB. However, this approach still falls short of meeting wider bandwidth requirements, such as above 64%.

[0004] Therefore, there is an urgent need for an H-plane waveguide T-junction power divider with a simple and compact structure, easy fabrication, and an impedance bandwidth of over 64% with S11≤-20dB to solve the above problems. Summary of the Invention

[0005] This invention aims to solve at least one of the technical problems existing in the prior art. To this end, this invention proposes an ultra-wideband H-plane waveguide T-junction power divider.

[0006] One embodiment of the present invention provides a technical solution to solve its technical problem: an ultra-wideband H-plane waveguide T-junction power divider, comprising an input rectangular waveguide, a matching rectangular waveguide, a matching cylinder, a rectangular partition, two output rectangular waveguides, and two adjustment cavities;

[0007] The two output rectangular waveguides are through and orthogonal to the input rectangular waveguide to form an H-plane waveguide T-junction;

[0008] The matching rectangular waveguide connects the input rectangular waveguide and the output rectangular waveguide;

[0009] The centerline of the matching cylinder coincides with the centerline of the intersection of the vertical and longitudinal cross-sections of the output rectangular wave, and the bottom surface is in contact with the bottom surface of the output rectangular waveguide.

[0010] The rectangular partition is located on the opposite side of the input rectangular waveguide and is embedded from the top toward the input rectangular waveguide. The rectangular partition is geometrically symmetrical about the vertical cross-section of the two output rectangular waveguides.

[0011] The two adjustment cavities are located on opposite sides of the input rectangular waveguide and are arranged on both sides of the rectangular partition. The adjustment cavities are geometrically symmetrical about the vertical cross-section of the two output rectangular waveguides.

[0012] The TE10 mode input to the rectangular waveguide is split into two signals of equal amplitude and in phase, and output from two separate rectangular waveguides.

[0013] As one of the preferred embodiments of the present invention, the width of the matched rectangular waveguide is 85%-95% of the length of the wide side of the output rectangular waveguide;

[0014] Height of the matching rectangular waveguide: 85%-95% of the narrow side length of the output rectangular waveguide;

[0015] The length of the matching rectangular waveguide is 1 / 8 to 1 / 4 of the waveguide wavelength.

[0016] Matching cylinder diameter range: 30%-70% of the wide side length of the output rectangular waveguide;

[0017] Matching cylinder height range: 20%-40% of the narrow side length of the output rectangular waveguide.

[0018] As one of the preferred embodiments of the present invention, the matching cylinder is shifted to the left or right along the symmetry line of the H-plane waveguide T-junction by a distance less than 5% of the length of the wide side of the output rectangular waveguide.

[0019] As one of the preferred embodiments of the present invention, the lower limit of the range of values ​​for the height of the rectangular partition is: the narrow side length of the output rectangular waveguide minus the height of the matching cylinder;

[0020] Upper limit of the rectangular partition height range: the narrow side length of the output rectangular waveguide;

[0021] Embedding depth of rectangular septum: 30%-70% of the width of the output rectangular waveguide;

[0022] Thickness of the rectangular septum: 6%-22% of the width of the output rectangular waveguide.

[0023] In one preferred embodiment of the present invention, the height of the adjustment cavity is equal to the length of the narrow side of the output rectangular waveguide;

[0024] The length of the adjustment cavity can be ranged from 35% to 65% of the width of the output rectangular waveguide.

[0025] The width of the adjustable cavity can be ranged from 5% to 25% of the length of the wide side of the output rectangular waveguide.

[0026] The beneficial effects of this invention are as follows: An ultra-wideband H-plane waveguide T-junction power divider includes an input rectangular waveguide, a matching rectangular waveguide, a matching cylinder, a rectangular partition, two output rectangular waveguides, and two adjustment cavities. The centerline of the matching cylinder coincides with the centerline of the intersection of the vertical and longitudinal cross-sections of the output rectangular waveguides, and its bottom surface is in contact with the bottom surface of the output rectangular waveguides. The rectangular partition is located on the opposite side of the input rectangular waveguide and is embedded from the top towards the input rectangular waveguide. The two adjustment cavities are located on the opposite side of the input rectangular waveguide and are arranged on both sides of the rectangular partition. Through the above structure, the power divider can be made very simple and compact, easy to manufacture, and in the 4.44GHz-8.71GHz frequency band, the impedance bandwidth of the input port S11≤-20dB is higher than 64.9%, and the amplitude and phase consistency of the two output signals are good in the above frequency band, which has good promotional value. Attached Figure Description

[0027] The above and / or additional aspects and advantages of the present invention will become apparent and readily understood from the description of the embodiments taken in conjunction with the following drawings, in which:

[0028] Figure 1 A three-dimensional diagram of a simulation model of a first embodiment of an ultrawideband H-plane waveguide T-junction power divider;

[0029] Figure 2 This is a top view of a simulation model of a first embodiment of an ultrawideband H-plane waveguide T-junction power divider;

[0030] Figure 3 A three-dimensional diagram of a simulation model of a second embodiment of an ultrawideband H-plane waveguide T-junction power divider;

[0031] Figure 4 This is a top view of a simulation model of a second embodiment of an ultrawideband H-plane waveguide T-junction power divider;

[0032] Figure 5 This is a structural assembly diagram of a first embodiment of an ultrawideband H-plane waveguide T-junction power divider;

[0033] Figure 6 This is a structural assembly diagram of a second embodiment of an ultrawideband H-plane waveguide T-junction power divider;

[0034] Figure 7The instantaneous electric field distribution diagram is shown in the first embodiment of an ultra-wideband H-plane waveguide T-junction power divider.

[0035] Figure 8 A schematic diagram of the S-parameter curves of a first embodiment of an ultrawideband H-plane waveguide T-junction power divider;

[0036] Figure 9 This is a schematic diagram of the phase curves of the two branches of a first embodiment of an ultra-wideband H-plane waveguide T-junction power divider. Detailed Implementation

[0037] This section will describe in detail specific embodiments of the present invention. Preferred embodiments of the present invention are shown in the accompanying drawings. The purpose of the drawings is to supplement the textual description with graphics, so that people can intuitively and vividly understand each technical feature and overall technical solution of the present invention, but they should not be construed as limiting the scope of protection of the present invention.

[0038] In the description of this invention, "multiple" means two or more; "greater than," "less than," and "exceeding" are understood to exclude the stated number; "above," "below," and "within" are understood to include the stated number. The use of "first" and "second" in the description is merely for distinguishing technical features and should not be construed as indicating or implying relative importance, or implicitly indicating the number of indicated technical features, or implicitly indicating the order of the indicated technical features.

[0039] In the description of this invention, it should be understood that the orientation descriptions, such as up, down, front, back, left, right, etc., are based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limiting this invention.

[0040] In this invention, unless otherwise explicitly defined, the terms "setting," "installing," and "connecting" should be interpreted broadly. For example, they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to a fixed connection, a detachable connection, or an integrally formed connection; they can refer to a mechanical connection; they can refer to the internal connection of two components or the interaction between two components. Those skilled in the art can reasonably determine the specific meaning of the above terms in this invention in conjunction with the specific content of the technical solution.

[0041] Reference Figures 1 to 9 An ultrawideband H-plane waveguide T-junction power divider includes an input rectangular waveguide 10, a matching rectangular waveguide 20, a matching cylinder 30, a rectangular partition 40, two output rectangular waveguides 50, and two adjustment cavities 60.

[0042] The two output rectangular waveguides 50 are through and orthogonal to the input rectangular waveguide 10 to form an H-plane waveguide T-junction;

[0043] Matching rectangular waveguide 20 connects input rectangular waveguide 10 and output rectangular waveguide 50;

[0044] The centerline of the matching cylinder 30 coincides with the centerline of the intersection of the vertical and longitudinal cross-sections of the output rectangular wave, and the bottom surface is in contact with the bottom surface of the output rectangular waveguide 50.

[0045] The rectangular partition 40 is located on the opposite side of the input rectangular waveguide 10 and is embedded from the top toward the input rectangular waveguide 10. The rectangular partition 40 is geometrically symmetrical about the vertical cross-section of the two output rectangular waveguides 50.

[0046] The two adjustment cavities 60 are located on opposite sides of the input rectangular waveguide 10 and are arranged on both sides of the rectangular partition 40. The adjustment cavities 60 are geometrically symmetrical about the vertical cross-section of the two output rectangular waveguides 50.

[0047] The TE 10 mode input to the input rectangular waveguide 10 is split into two signals of equal amplitude and in phase and output from the two output rectangular waveguides 50 respectively.

[0048] 1)Reference Figures 1-6 In this invention, the two output rectangular waveguides 50 are directly connected, and the longitudinal cross-section of the center lines of the upper and lower wide sides of the output rectangular waveguide 50 is orthogonal to the longitudinal cross-section of the center lines of the upper and lower wide sides of the input rectangular waveguide 10; the transverse cross-section of the center lines of the left and right narrow sides of the output rectangular waveguide 50 is on the same plane as the transverse cross-section of the left and right narrow sides of the input rectangular waveguide 10; the vertical cross-section of the center lines of the front and rear long sides of the output rectangular waveguide 50 is on the same plane as the longitudinal cross-section of the input rectangular waveguide 10, that is, the two output rectangular waveguides 50 are geometrically symmetrical about this plane.

[0049] 2) The matching rectangular waveguide 20 connects the input rectangular waveguide 10 and the output rectangular waveguide 50, and the longitudinal and transverse cross sections of the matching rectangular waveguide 20 coincide with those of the input rectangular waveguide 10. In some embodiments, to obtain a wider impedance bandwidth, preferred methods include: ① adjusting the width of the matching rectangular waveguide 20, preferably 85%-95% of the length of the wide side of the output rectangular waveguide 50; ② adjusting the height of the matching rectangular waveguide 20, preferably 85%-95% of the length of the narrow side of the output rectangular waveguide 50; ③ adjusting the length of the matching rectangular waveguide 20, preferably 1 / 8-1 / 4 of the waveguide wavelength.

[0050] 3) The centerline of the matching cylinder 30 coincides with the centerline of the intersection of the vertical and longitudinal cross-sections of the output rectangular wave, and the bottom surface is in contact with the bottom surface of the output rectangular waveguide 50. In some embodiments, to obtain a wider impedance bandwidth, preferred methods include: ① adjusting the diameter of the matching cylinder 30, which is preferably 30%-70% of the width of the output rectangular waveguide 50; ② adjusting the height of the matching cylinder 30, which is preferably 20%-40% of the width of the output rectangular waveguide 50; ③ adjusting the position of the matching cylinder 30, specifically by shifting it to the left or right along the symmetry line of the H-plane waveguide T-junction by a distance less than 5% of the width of the output rectangular waveguide 50.

[0051] 4) The rectangular partition 40 is located on the opposite side of the input rectangular waveguide 10 and is embedded from the top toward the input rectangular waveguide 10. The rectangular partition 40 is geometrically symmetrical about the vertical cross-section of the two output rectangular waveguides 50. In some embodiments, to obtain a wider impedance bandwidth, preferred methods include: ① adjusting the height of the rectangular partition 40, which has upper and lower limits, with the lower limit corresponding to... Figures 1-2 The first embodiment in the text corresponds to the upper limit. Figures 3-4 The second embodiment; by Figures 1-2 It can be seen that the lower limit of the height range is: the narrow side length of the output rectangular waveguide 50 minus the height of the matching cylinder 30; from Figures 3-4 It can be seen that the upper limit of the value range is: the narrow side length of the output rectangular waveguide 50; considering the actual processing, it is preferable to take the upper or lower limit; ② Adjust the embedding depth of the rectangular partition 40, the preferred value is 30%-70% of the wide side length of the output rectangular waveguide 50; ③ Adjust the thickness of the rectangular partition 40, the preferred value is 6%-22% of the wide side length of the output rectangular waveguide 50.

[0052] 5) The two adjustment cavities 60 are located on opposite sides of the input rectangular waveguide 10 and are arranged on both sides of the rectangular partition 40. The adjustment cavities 60 are geometrically symmetrical about the vertical cross-section of the two output rectangular waveguides 50, as shown in the reference. Figure 2 and Figure 4 From a top-down view, this is equivalent to loading two protrusions on the top of the T-junction. In some embodiments, to obtain a wider impedance bandwidth, preferred methods include: ① adjusting the height of the adjustment cavity 60, preferably equal to the narrow side length of the output rectangular waveguide 50; ② adjusting the length of the adjustment cavity 60, preferably ranging from 35% to 65% of the wide side length of the output rectangular waveguide 50; ③ adjusting the width of the protrusions in the adjustment cavity 60, preferably ranging from 5% to 25% of the wide side length of the output rectangular waveguide 50.

[0053] 6) Through the above comprehensive methods, combined with the optimization algorithm of three-dimensional electromagnetic simulation software, good input return loss and good amplitude-phase consistency of the two output branches can be obtained within a wide impedance bandwidth; the first embodiment provided by the present invention will be used for illustration, referring to... Figures 8-9 The optimized impedance bandwidth simulation results show that the impedance bandwidth of the input port S11≤-20dB is higher than 64.9% (4.44GHz-8.71GHz), and the amplitude and phase consistency of the two output signals are good within the above frequency band. The second embodiment provided by this invention can also achieve similar results. To avoid repetition, only the results of the first embodiment are given. In addition, refer to... Figures 5-6 The diagram shows the structural assembly of the first and second embodiments in actual engineering, which are composed of an upper shell 80 and a lower shell 90. As can be seen from the diagram, the present invention has the advantages of simple structure and easy processing, and has good engineering value.

[0054] Of course, the present invention is not limited to the above-described embodiments. Those skilled in the art can make equivalent modifications or substitutions without departing from the spirit of the present invention. All such equivalent modifications and substitutions are included within the scope defined by the claims of this application.

Claims

1. An ultrawideband H-plane waveguide T-junction power divider, characterized in that: It includes an input rectangular waveguide (10), a matching rectangular waveguide (20), a matching cylinder (30), a rectangular septum (40), two output rectangular waveguides (50), and two tuning cavities (60); The two output rectangular waveguides (50) are through and orthogonal to the input rectangular waveguide (10) to form an H-plane waveguide T-junction; The matching rectangular waveguide (20) connects the input rectangular waveguide (10) and the output rectangular waveguide (50); The centerline of the matching cylinder (30) coincides with the centerline of the intersection of the vertical cross-section and the longitudinal cross-section of the output rectangular wave, and the bottom surface is in contact with the bottom surface of the output rectangular waveguide (50). The rectangular partition (40) is located on the opposite side of the input rectangular waveguide (10) and is embedded from the top toward the input rectangular waveguide (10). The rectangular partition (40) is geometrically symmetrical about the vertical cross-section of the two output rectangular waveguides (50). The two adjustment cavities (60) are located on opposite sides of the input rectangular waveguide (10) and are arranged on both sides of the rectangular partition (40). The adjustment cavities (60) are geometrically symmetrical about the vertical cross-section of the two output rectangular waveguides (50). The TE10 mode input to the input rectangular waveguide (10) is split into two signals of equal amplitude and in phase and output from the two output rectangular waveguides (50) respectively.

2. The ultra-wideband H-plane waveguide T-junction power divider according to claim 1, characterized in that: The width of the matching rectangular waveguide (20) is 85%-95% of the width of the output rectangular waveguide (50). The height of the matching rectangular waveguide (20) is 85%-95% of the narrow side length of the output rectangular waveguide (50); The length of the matching rectangular waveguide (20) is 1 / 8 to 1 / 4 of the waveguide wavelength.

3. The ultra-wideband H-plane waveguide T-junction power divider according to claim 1, characterized in that: The diameter range of the matching cylinder (30) is 30%-70% of the width of the output rectangular waveguide (50); The height range of the matching cylinder (30) is 20%-40% of the narrow side length of the output rectangular waveguide (50).

4. The ultra-wideband H-plane waveguide T-junction power divider according to claim 1, characterized in that: The matching cylinder (30) is shifted to the left or right along the symmetry line of the H-plane waveguide T-junction by a distance less than 5% of the width of the output rectangular waveguide (50).

5. The ultra-wideband H-plane waveguide T-junction power divider according to claim 1, characterized in that: The lower limit of the height range of the rectangular partition (40) is: the narrow side length of the output rectangular waveguide (50) minus the height of the matching cylinder (30); The upper limit of the height range of the rectangular partition (40) is: the narrow side length of the output rectangular waveguide (50); The embedding depth of the rectangular partition (40) is 30%-70% of the width of the output rectangular waveguide (50); The thickness of the rectangular partition (40) is 6%-22% of the width of the output rectangular waveguide (50).

6. The ultra-wideband H-plane waveguide T-junction power divider according to claim 1, characterized in that: The height of the adjustment cavity (60) is equal to the length of the narrow side of the output rectangular waveguide (50); The length of the adjustment cavity (60) is in the range of 35%-65% of the width of the output rectangular waveguide (50); The width of the adjustment cavity (60) ranges from 5% to 25% of the width of the output rectangular waveguide (50).

Citation Information

Patent Citations

  • Ultra-wideband H-plane 3dB waveguide power divider

    CN116470256A