CN202695690U - A multi-hole directional coupler for a rectangular waveguide with coupling holes positioned on one side of a main rectangular waveguide - Google Patents

A multi-hole directional coupler for a rectangular waveguide with coupling holes positioned on one side of a main rectangular waveguide Download PDF

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Publication number
CN202695690U
CN202695690U CN 201220394192 CN201220394192U CN202695690U CN 202695690 U CN202695690 U CN 202695690U CN 201220394192 CN201220394192 CN 201220394192 CN 201220394192 U CN201220394192 U CN 201220394192U CN 202695690 U CN202695690 U CN 202695690U
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rectangular waveguide
main
coupling
main rectangular
directional coupler
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CN 201220394192
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Chinese (zh)
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王清源
谭宜成
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Chengdu Sinoscite Technology Co Ltd
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Chengdu Sinoscite Technology Co Ltd
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Abstract

The utility model discloses a multi-hole directional coupler for a rectangular waveguide with coupling holes positioned on one side of a main rectangular waveguide, and the multi-hole directional coupler comprises a main rectangular waveguide, an auxiliary rectangular waveguide, and coupling holes; the main rectangular waveguide and the auxiliary rectangular waveguide are mutually separated, and the main rectangular waveguide is connected with the auxiliary waveguide through at least three coupling holes; at least one coupling hole comprises a hollow coupling tube attached on a side wall of the main rectangular waveguide or/and a side wall of the auxiliary rectangular waveguide, the hollow coupling tube close to the side wall of the main rectangular waveguide is connected with a coupling cavity with three opening terminals, the coupling cavity is conducted with the hollow coupling tube, and the coupling cavity is positioned between the main rectangular waveguide and the auxiliary rectangular waveguide and is conducted with the main rectangular waveguide and the auxiliary rectangular waveguide; the coupling holes are arranged along an axis of the main rectangular waveguide, and adjacent coupling holes in the axis direction of the main rectangular waveguide are positioned on one side of the axis of the main rectangular waveguide; and the multi-hole directional coupler for the rectangular waveguide with coupling holes positioned on one side of the main rectangular waveguide has advantages of compact structure, simple processing, large power capacity, and low insertion loss.

Description

Be positioned at the porous rectangular waveguide directional coupler of main rectangular waveguide one side
Technical field
The utility model relates to multi-hole directional coupler, specifically, relates to a kind of porous rectangular waveguide directional coupler that is positioned at main rectangular waveguide one side that utilizes a plurality of holes to be coupled.
Background technology
Directional coupler is widely used a kind of microwave device in microwave system, and its Main Function is that microwave signal is carried out to power division according to a certain percentage; Directional coupler consists of two transmission lines, and coaxial line, rectangular waveguide, circular waveguide, strip line and microstrip line etc. all can form directional coupler; So of a great variety from the structure directional coupler, widely different, but mainly be divided into four kinds from their coupling mechanism, i.e. aperture coupling, parallel coupling, branch's coupling and coupling double T.
Before early 1950s, nearly all microwave equipment all adopts metal waveguide and waveguide circuit, and directional coupler at that time also mostly is the Waveguide Hole coupling directional coupler; Its theoretical foundation is the Bethe slot-coupling theory, and the people such as Cohn and Levy have also done a lot of contributions.
Development along with the aerospace technology, require microwave circuit and system to accomplish miniaturization, lightweight and dependable performance, so strip line and microstrip line have occurred, the microwave integrated transmission-lines such as fin line, the line of rabbet joint, co-planar waveguide and coplanar stripline have appearred again in needs due to microwave circuit and system in succession subsequently, various transmission line directional couplers so just occurred.
The tradition single-hole directional coupler has some advantage: as simple in structure, parameter is few, design is got up more convenient; But it also exists some shortcomings: as poor as narrow bandwidth, directivity, only suitable in the work of design frequency place, drift out this frequency, and directivity will reduce.
Although the tradition multi-hole directional coupler can accomplish that very wide bandwidth, directivity also have very and improve, but also exist some shortcomings, as large as volume, requirement on machining accuracy is high, insertion loss is high, particularly at the millimeter wave terahertz wave band, too high Insertion Loss makes this device lose use value; This just encourages us to remove to design a kind of novel porous directional coupler that can overcome these shortcomings.
The utility model content
The purpose of this utility model is to overcome some shortcomings of traditional directional coupler, provides that a kind of compact, insertion loss are low, the porous rectangular waveguide directional coupler that is positioned at main rectangular waveguide one side in broadband.
To achieve these goals, the technical solution adopted in the utility model is as follows: be positioned at the porous rectangular waveguide directional coupler of main rectangular waveguide one side, it is characterized in that: comprise as the main rectangular waveguide of microwave main channel with as the secondary rectangular waveguide of sampled signal passage and as the coupling aperture of coupling channel; The main mould H face of the main mould H face of main rectangular waveguide and secondary rectangular waveguide is parallel to each other, and main rectangular waveguide and secondary rectangular waveguide are isolated mutually; Main rectangular waveguide is communicated with secondary rectangular waveguide by least 3 coupling apertures, at least 1 coupling aperture comprise be attached to main rectangular waveguide sidewall or and the hollow tube coupling of secondary rectangular waveguide sidewall, the hollow tube coupling is connected with the coupling cavity of three end openings near the sidewall of main rectangular waveguide, coupling cavity and the conducting of hollow tube coupling, coupling cavity between main rectangular waveguide and secondary rectangular waveguide and with main rectangular waveguide and secondary rectangular waveguide conducting; Coupling aperture is arranged along the axis of main rectangular waveguide, is positioned at a side of main rectangular waveguide axis along the adjacent coupling aperture of main rectangular waveguide axis direction; Along on main rectangular waveguide axis direction, the hole of adjacent two coupling apertures in the heart apart from the guide wavelength in the central task frequency of main rectangular waveguide 20% ~ 30% between.The projection of shape that coupling aperture is overlooked on direction at it is circle or polygon.
Added the cylindrical metal body that another axis is vertical with the main mould H face of main rectangular waveguide in described coupling aperture, this cylindrical metal body only connects with the inwall of corresponding coupling aperture in a direction, the cross section of this cylindrical metal body be shaped as rectangle or circle or other polygons.
Described cylindrical metal body can all or part ofly be positioned at the inside of main rectangular waveguide.
The axis of described main rectangular waveguide and secondary rectangular waveguide is parallel to each other.
Described main rectangular waveguide or and the one or both ends of secondary rectangular waveguide also be connected with curved waveguide.
Described main rectangular waveguide Huo and secondary rectangular waveguide are connected with the matching structure with extraneous device matching in its one or both ends.
The part of coupling aperture is beyond main rectangular waveguide or secondary rectangular waveguide, or the while is outside main rectangular waveguide and secondary rectangular waveguide.
Single-hole directional coupler has relatively narrow bandwidth on directivity, so people have expected a series of coupling apertures of design, this series of coupling aperture forms an array, and several arrays can also stack up, and come thus the comprehensive degree of coupling and directional responses.Utilize the directivity of aperture and the directivity of array to superpose in coupled end, just can obtain better directivity, and this extra degree of freedom can also improve bandwidth.Therefore, in order to increase the coupling performance of coupling aperture, we arrange coupling aperture along the axis of main rectangular waveguide, simultaneously in order to increase the bore of coupling aperture, and the left side that is distributed in main rectangular waveguide axis or right side that we interlock adjacent coupling aperture successively.
After coupling aperture is arranged along main rectangular waveguide one side, under the condition that meets the coupling reinforcement, be adjacent two coupling apertures hole in the heart apart from should be arranged on main rectangular waveguide the central task frequency guide wavelength 20% ~ 30% between, can increase the bore of coupling aperture, so can further add close coupling again, thereby further improve the directivity of this porous rectangular waveguide directional coupler.
Simultaneously, preferentially selecting cross section is that rectangle column metallic object is arranged in coupling aperture, and the position of cylindrical metal body in coupling aperture is unrestricted, can be arranged according to the actual requirements.
Angle between the axis of general main rectangular waveguide and the axis of secondary rectangular waveguide is between 0 ° to 180 °.For the volume that makes its whole coupler reduces, we pay the utmost attention to the axis of main rectangular waveguide and the axis of secondary rectangular waveguide be arranged in parallel.
The projection of shape that coupling aperture is overlooked direction at it is unrestricted, and when considering cost of manufacture, we pay the utmost attention to circle or triangle or the quadrangle of the simple and easy batch production of energy.
While increasing the cylindrical metal body, described coupling aperture and cylindrical metal body body are Y-shaped or cross and other starlike more than 4 branches in the projection of shape of overlooking direction.
Wherein above-mentioned H face is the magnetic field face.
Because the position of the coupling aperture of traditional multi-hole directional coupler is arranged between main rectangular waveguide and secondary rectangular waveguide.And improvement of the present utility model is: 1, the position of traditional coupling aperture is adjusted, design accordingly and the coupling aperture of adjusting rear structure and being complementary, be that coupling aperture in the utility model is comprised of coupling cavity and hollow tube coupling, wherein during setting position, coupling cavity is arranged between main rectangular waveguide and secondary rectangular waveguide, in order to be communicated with main rectangular waveguide and secondary rectangular waveguide, owing to also being provided with the hollow tube coupling, can further strengthen coupling; 2, because experiment is found, when we select a plurality of coupling aperture, the directivity that adjacent coupling aperture is arranged along the axis of main rectangular waveguide is better, while therefore designing, preferentially arrange hollow tube coupling in coupling aperture be attached to main rectangular waveguide sidewall or and secondary rectangular waveguide sidewall.Further preferentially be set to: adjacent coupling aperture is positioned at a side of main rectangular waveguide.
While according to the above-mentioned coupler of preferentially being arranged to, being coupled output, its course of work is: microwave is at first by main rectangular waveguide, while locating in the structure Coupling hole, by coupling cavity, microwave coupling is arrived to secondary rectangular waveguide, added close coupling under the effect of hollow tube coupling, make its directivity grow, further due to adjacent coupling aperture, be positioned at a side of main rectangular waveguide; Therefore reinforcement can also further be coupled on the above-mentioned basis that adds close coupling.
Based on said structure, the utility model compared to its improvement of multi-hole directional coupler in the past is: traditional coupling aperture is improved to the coupling channel be comprised of coupling cavity and hollow tube coupling, wherein coupling cavity is arranged between main rectangular waveguide and secondary rectangular waveguide, the hollow tube coupling be attached to main rectangular waveguide sidewall or and secondary rectangular waveguide sidewall.Can increase its directivity like this.
Because the utility model adopts the design of a plurality of coupling apertures, there is the effect that coupling is strengthened between coupling aperture and coupling aperture, if the permutation and combination between coupling aperture and coupling aperture can not reach applicable arranging, can cause many unfavorable factors, such as coupling weakens phenomenon, we arrange and have done corresponding research it for this reason, for the volume that reduces whole coupling and the effect that reaches the coupling reinforcement, the further improvement of the utility model is: coupling aperture is arranged along the axis of main rectangular waveguide, be positioned at a side of main rectangular waveguide axis along the adjacent coupling aperture of main rectangular waveguide axis direction, along on main rectangular waveguide axis direction, the hole of adjacent two coupling apertures in the heart apart from the guide wavelength in the central task frequency of main rectangular waveguide 20% ~ 30% between.Be about to the side that adjacent coupling aperture is distributed in main rectangular waveguide axis successively.After adjacent coupling aperture distributes along main rectangular waveguide one side, reinforcement can further be coupled, thereby further improve the directivity that this is positioned at the porous rectangular waveguide directional coupler of main rectangular waveguide one side, the hole of the adjacent two coupling apertures influencing factor of distance is in the heart determined by input signal, in addition, because the coupling aperture in the utility model all is positioned at the same side of main rectangular waveguide, therefore be compared to other arrangement mode, its small volume, as coupling aperture is arranged in both sides, with both sides, compare, the design volume of an obvious side is less than the design volume of both sides.
The operation principle of multi-hole directional coupler can be described below:
Because can being similar to, the waveguide inwall regards the ideal conducting plane as.According to the boundary condition of alternating electromagnetic field, ideal conducting plane E only has the component perpendicular with surface, there is no tangential component; Magnetic field H only has the component tangent with surface, there is no normal component.The public broadside of the vertical major-minor rectangular waveguide of main waveguide internal electric field, reach that a part of electric field that complementary wave leads still perpendicular to the public broadside of major-minor waveguide by aperture, and its power line forms an elbow.The closed curve that magnetic field (magnetic line of force) is parallel main Guide of Wide Wall, pierce into therefore the magnetic field of main waveguide (magnetic line of force) forms one group at the aperture place full curve that passes secondary rectangular waveguide.
Entering by aperture that a part of electric field that complementary wave leads leads the coupling aperture both sides at complementary wave and is coupled out electric field E vertically downward '.The electric field E of alternation 'inspire Induced magnetic field H '(direction is determined by S=E*H).Electricity, magnetic field alternately excites, and forms respectively the electromagnetic wave to coupled end and isolation end output.
Entering by aperture that a part of magnetic field that complementary wave leads leads the coupling aperture both sides at complementary wave and is coupled out level magnetic field H to the right '.The magnetic field H of alternation 'inspire the electric field E inducted '.Electricity, magnetic field alternately excites, and forms respectively the electromagnetic wave to coupled end and isolation end output.
The aperture coupling is above-mentioned electric coupling and magnetic-coupled stack.The electromagnetic wave that two kinds of couplings are formed merges, and we can find out that the electromagnetic wave transmitted toward the coupled end direction superposes in the same way, form coupling output; Electromagnetic wave toward the transmission of isolation end direction oppositely superposes, and the formation of cancelling out each other isolation end, so be to export without coupling in principle.But, due to aperture electricity, magnetic-coupled asymmetry, both superpose and have produced directivity.
Multi-hole directional coupler utilizes a series of coupling apertures to form an array exactly, and several arrays can also stack up, and come thus the comprehensive degree of coupling and directional responses.Utilize the directivity of aperture and the directivity of array to superpose in coupled end, just can obtain better directivity, and this extra degree of freedom can also improve bandwidth.
The utility model has the advantage of compact conformation, processing is simple, power capacity is large, insertion loss is low, particularly at millimeter wave and terahertz wave band, with common multi-hole directional coupler, compares, and aspect filter with low insertion loss, has outstanding advantage.Compact of the present utility model is positioned at the electronic system that main rectangular waveguide one side porous rectangular waveguide directional coupler is expected to be widely used in each microwave band and terahertz wave band.
The accompanying drawing explanation
Fig. 1 is stereogram when in the utility model, the adjacent coupled hole is positioned at main rectangular waveguide one side.
The structural perspective that Fig. 2 is coupling aperture.
The vertical view that Fig. 3 is the utility model embodiment mono-.
The A-A profile that Fig. 4 is the utility model embodiment mono-.
The vertical view that Fig. 5 is the utility model embodiment bis-.
The vertical view that Fig. 6 is the utility model embodiment tri-.
The vertical view that Fig. 7 is the utility model embodiment tetra-.
The vertical view that Fig. 8 is the utility model embodiment five.
The vertical view that Fig. 9 is the utility model embodiment six.
Label in figure is expressed as respectively: 1, main rectangular waveguide; 2, secondary rectangular waveguide; 3, coupling aperture; 31, coupling cavity; 32, hollow tube coupling; 4, cylindrical metal body; 5, curved waveguide.
Embodiment
Below in conjunction with embodiment, the utility model is described in further detail, but the utility model execution mode is not limited to this.
As shown in Figure 1, 2, be positioned at the porous rectangular waveguide directional coupler of main rectangular waveguide one side, comprise as the main rectangular waveguide 1 of microwave main channel with as the secondary rectangular waveguide 2 of sampled signal passage and as the coupling aperture 3 of coupling channel; Main rectangular waveguide 1 and secondary rectangular waveguide 2 are isolated mutually; Coupling aperture 3 comprise be attached to main rectangular waveguide 1 sidewall or and the hollow tube coupling 32 of secondary rectangular waveguide sidewall, hollow tube coupling 32 is connected with the coupling cavity 31 of three end openings near the sidewall of rectangular waveguide 1, coupling cavity 31 and 32 conductings of hollow tube coupling, coupling cavity 31 between main rectangular waveguide 1 and secondary rectangular waveguide 2 and with main rectangular waveguide 1 and 2 conductings of secondary rectangular waveguide .wherein, the number of coupling aperture 3 is 3; The projection of shape that coupling aperture 3 is overlooked direction at it is for circular, and the axis of the axis of main rectangular waveguide 1 and secondary rectangular waveguide 2 is parallel to each other.Coupling aperture 3 is arranged along the axis of main rectangular waveguide 1, is positioned at a side of main rectangular waveguide 1 axis along the adjacent coupling aperture of main rectangular waveguide 1 axis direction; Along on main rectangular waveguide 1 axis direction, the hole of adjacent two coupling apertures 3 in the heart apart from the guide wavelength of the central task frequency in the central task frequency of main rectangular waveguide 1 23% ~ 27% between.
Because the utility model adopts the design of a plurality of coupling apertures, there is the effect that coupling is strengthened between coupling aperture and coupling aperture, if the permutation and combination between coupling aperture and coupling aperture can not reach applicable arranging, can cause many unfavorable factors, such as coupling weakens phenomenon, we arrange and have done corresponding research it for this reason, for the volume that reduces whole coupling and the effect that reaches the coupling reinforcement, the further improvement of the utility model is: coupling aperture is arranged along the axis of main rectangular waveguide, be positioned at a side of main rectangular waveguide axis along the adjacent coupling aperture of main rectangular waveguide axis direction, along on main rectangular waveguide axis direction, the hole of adjacent two coupling apertures in the heart apart from the guide wavelength of main rectangular waveguide 20% ~ 30% between.That is, adjacent coupling aperture is distributed in successively to a side of main rectangular waveguide axis.After adjacent coupling aperture distributes along main rectangular waveguide one side, reinforcement can further be coupled, thereby further improve the directivity that this is positioned at the porous rectangular waveguide directional coupler of main rectangular waveguide one side, the hole of the adjacent two coupling apertures influencing factor of distance is in the heart determined by the input microwave, in addition, because the coupling aperture in the utility model all is positioned at the same side of main rectangular waveguide, therefore be compared to other arrangement mode, its small volume, as coupling aperture is arranged in both sides, with both sides, compare, the design volume of an obvious side is less than the design volume of both sides.
Embodiment mono-
As Fig. 3, shown in 4, the present embodiment comprises and is provided with main rectangular waveguide 1 and secondary rectangular waveguide 2, and main rectangular waveguide 1 is the microwave main channel, and secondary rectangular waveguide 2 is the sampled signal passage; Main rectangular waveguide 1 and secondary rectangular waveguide 2 are isolated mutually, by 5 coupling apertures 3, are communicated with; The part of 5 coupling apertures 3 is beyond main rectangular waveguide 1 and secondary rectangular waveguide 2.The axis of described coupling aperture 3 is vertical with the axis of main rectangular waveguide 1, its cross section be shaped as irregular polygon; Adjacent coupled hole 3 is positioned at a side of main rectangular waveguide, along on main rectangular waveguide 1 axis direction, the hole of adjacent two coupling apertures 3 in the heart apart from the guide wavelength of the central task frequency in the central task frequency of main rectangular waveguide 1 23% ~ 27% between, added the cylindrical metal body 4 that another axis is vertical with the axis of main rectangular waveguide 1 in each coupling aperture 3, the cross section of this cylindrical metal body 4 be shaped as rectangle.
Embodiment bis-
As shown in Figure 5, the place different from embodiment mono-is to have 4 coupling apertures 3 to be positioned at the same side of main rectangular waveguide, the hole in adjacent coupled hole 3 in the heart apart from the guide wavelength of the central task frequency in the central task frequency of main rectangular waveguide 1 23% ~ 27% between, its coupling performance is better.4 of each cylindrical metal bodies connect and are positioned on the different azimuth of coupling aperture 3 with the inwall of corresponding coupling aperture 3 in a direction, and its particular location is determined by parameter optimizations such as directivity.
Embodiment tri-
As shown in Figure 6, the places different from embodiment mono-are, the two ends of secondary rectangular waveguide 2 also are connected with curved waveguide 5, can facilitate like this being connected of this directional coupler and extraneous device, thereby it is better to obtain directivity, the porous rectangular waveguide directional coupler that bandwidth is wider.
Embodiment tetra-
As shown in Figure 7, the place different from embodiment one is that the cross section of coupling aperture 3 is ellipse, and all do not add column metallic object 4 in coupling aperture 3.
Embodiment five
As shown in Figure 8, the place different from embodiment five is that the cross section of coupling aperture 3 is rectangle, and is provided with the cylindrical metal body 4 that shape of cross section is rectangle in coupling aperture 3.
Embodiment six
As shown in Figure 9, different from embodiment five is that the cross section of coupling aperture 3 is triangle.
Just can realize preferably the utility model as mentioned above.

Claims (8)

1. be positioned at the porous rectangular waveguide directional coupler of main rectangular waveguide one side, it is characterized in that: comprise as the main rectangular waveguide (1) of microwave main channel with as the secondary rectangular waveguide (2) of sampled signal passage and as the coupling aperture (3) of coupling channel, the main mould H face of the main mould H face of main rectangular waveguide (1) and secondary rectangular waveguide (2) is parallel to each other, and main rectangular waveguide (1) and secondary rectangular waveguide (2) be isolation mutually, main rectangular waveguide (1) is communicated with secondary rectangular waveguide (2) by least 3 coupling apertures (3), at least 1 coupling aperture (3) comprise be attached to main rectangular waveguide (1) sidewall or and the hollow tube coupling (32) of secondary rectangular waveguide (2) sidewall, hollow tube coupling (32) is connected with the coupling cavity (31) of three end openings near the sidewall of main rectangular waveguide (1), coupling cavity (31) and hollow tube coupling (32) conducting, coupling cavity (31) be positioned between main rectangular waveguide (1) and secondary rectangular waveguide (2) and with main rectangular waveguide (1) and secondary rectangular waveguide (2) conducting ,described coupling aperture (3) is arranged along the axis of main rectangular waveguide (1), and along main rectangular waveguide (1) axis direction, adjacent coupling aperture (3) is positioned at a side of main rectangular waveguide (1) axis direction, along on main rectangular waveguide (1) axis direction, the hole of adjacent two coupling apertures (3) in the heart apart from the guide wavelength in the central task frequency of main rectangular waveguide (1) 20% ~ 30% between.
2. the porous rectangular waveguide directional coupler that is positioned at main rectangular waveguide one side according to claim 1, is characterized in that: added the cylindrical metal body (4) that another axis is vertical with the main mould H face of main rectangular waveguide (1) in described coupling aperture (3).
3. the porous rectangular waveguide directional coupler that is positioned at main rectangular waveguide one side according to claim 2, it is characterized in that: the only inwall connection with corresponding coupling aperture (3) in a direction of described cylindrical metal body (4), the cross section of this cylindrical metal body (4) be shaped as polygon.
4. the porous rectangular waveguide directional coupler that is positioned at main rectangular waveguide one side according to claim 1, it is characterized in that: the projection of shape that coupling aperture (3) is overlooked on direction at it is circle or polygon.
5. the porous rectangular waveguide directional coupler that is positioned at main rectangular waveguide one side according to claim 3, is characterized in that: all or part of inside that is positioned at main rectangular waveguide (1) of described cylindrical metal body (4).
6. the porous rectangular waveguide directional coupler that is positioned at main rectangular waveguide one side according to claim 1, it is characterized in that: the axis of described main rectangular waveguide (1) and secondary rectangular waveguide (2) is parallel to each other.
7. according to the described porous rectangular waveguide directional coupler that is positioned at main rectangular waveguide one side of any one in claim 1-6, it is characterized in that: described main rectangular waveguide (1) or and the one or both ends of secondary transmission line (2) also be connected with curved waveguide (5).
8. according to the described porous rectangular waveguide directional coupler that is positioned at main rectangular waveguide one side of any one in claim 1-6, it is characterized in that: described main rectangular waveguide (1) Huo and secondary rectangular waveguide (2) are connected with the matching structure with extraneous device matching in its one or both ends.
CN 201220394192 2012-08-10 2012-08-10 A multi-hole directional coupler for a rectangular waveguide with coupling holes positioned on one side of a main rectangular waveguide Withdrawn - After Issue CN202695690U (en)

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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN102810709A (en) * 2012-08-10 2012-12-05 成都赛纳赛德科技有限公司 Rectangular porous waveguide directional coupler located at one side of main rectangular waveguide

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN102810709A (en) * 2012-08-10 2012-12-05 成都赛纳赛德科技有限公司 Rectangular porous waveguide directional coupler located at one side of main rectangular waveguide
CN102810709B (en) * 2012-08-10 2014-04-16 成都赛纳赛德科技有限公司 Rectangular porous waveguide directional coupler located at one side of main rectangular waveguide

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