WO1984003395A1 - Square conductor coaxial coupler - Google Patents

Square conductor coaxial coupler Download PDF

Info

Publication number
WO1984003395A1
WO1984003395A1 PCT/US1983/001991 US8301991W WO8403395A1 WO 1984003395 A1 WO1984003395 A1 WO 1984003395A1 US 8301991 W US8301991 W US 8301991W WO 8403395 A1 WO8403395 A1 WO 8403395A1
Authority
WO
WIPO (PCT)
Prior art keywords
coupler
ports
conductors
window
disposed
Prior art date
Application number
PCT/US1983/001991
Other languages
English (en)
French (fr)
Inventor
Thomas Hudspeth
Richard V Basil Jr
Harmon H Keeling
Original Assignee
Hughes Aircraft Co
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Hughes Aircraft Co filed Critical Hughes Aircraft Co
Priority to DE8484900444T priority Critical patent/DE3379138D1/de
Publication of WO1984003395A1 publication Critical patent/WO1984003395A1/en

Links

Classifications

    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01PWAVEGUIDES; RESONATORS, LINES, OR OTHER DEVICES OF THE WAVEGUIDE TYPE
    • H01P5/00Coupling devices of the waveguide type
    • H01P5/12Coupling devices having more than two ports
    • H01P5/16Conjugate devices, i.e. devices having at least one port decoupled from one other port
    • H01P5/18Conjugate devices, i.e. devices having at least one port decoupled from one other port consisting of two coupled guides, e.g. directional couplers
    • H01P5/183Conjugate devices, i.e. devices having at least one port decoupled from one other port consisting of two coupled guides, e.g. directional couplers at least one of the guides being a coaxial line

Definitions

  • This invention relates to microwave circuits and, more particularly, to a coupler of electromagnetic energy in a microwave circuit employing coaxial lines of square conducting elements.
  • microwave circuitry An important use of microwave circuitry is found in the construction of satellites which orbit the earth to serve as communication links among various stations on the surface of the earth. Such microwave circuits are utilized to receive and retransmit signals between the satellite and the earth station. The microwave circuitry is also utilized in the development of tracking signals for orienting the satellite and for directing the antennas in the requisite direction for communication with the stations.
  • a beacon signal on the earth is sent to the satellite.
  • the satellite receives the beacon signal by an antenna and a signal processing circuit develops azimuth and elevation error signals by which the satellite is able to correct its orientation.
  • the arithmetic manipulations of the sum channel, the azimuth channel and the elevation channel in producing the orientation error signals are also accomplished by microwave circuitry.
  • a form of construction which has enjoyed much success is the construction of microwave circuits within a solid plate of electrically conducting materials, preferably a light weight metal such as aluminum.
  • the microwave structures are formed, in part, by milling out channels in the surface of the metallic plate for the conduction of electromagnetic signals in a range of, for example, 4-6 GHz (Gigahertz) as well as other bands.
  • a cover plate is then placed on top of the base plate with the milled channels to close off these channels to form the passageways for the propagation of the electromagnetic energy.
  • One form of physical structure for the electro ⁇ magnetic passages is the coaxial line formed of an outer conductor of square cross-section, and having an inner conductor, also of square cross-section. Both the inner and the outer conductor are formed of metal. This type of structure is advantageous in satellites due to the wide bandwidth, compact size, low propagation loss, and adaptability for distribution networks and for multiple elements antenna feeds.
  • OMPi requirements have been met by the use of specially fabricated support structures which required more time than is desirable for the insertion and positioning of the support structures within the microwave circuit.
  • the physical structure did not provide for as good an impedance match or for the coupling of electromagnetic energy over the same spectral band as might be desired.
  • a structure for the positioning of elements in a hybrid coupler for square conductor coaxial lines also facilitates the tuning of the coupler and the adjustment of its characteristics to provide for a minimization of variation of coupling as a function of frequency about the center of the spectral band of interest while maintaining a desired level of impedance match over the same spectral band.
  • both the coupling and impedance characteristics can be optimized for a wide frequency range of interest.
  • the coupler finds ready use in the power division and summation circuits utilized in the development of tracking signals for the orienting of the satellite in accordance with a signal received from a beacon on the earth's surface, and also finds use in multi-element antennas to form, transmit and receive beam patterns for communication.
  • the physical structure of the coupler permits the coupler to be scaled upward in frequency over a wide frequency range for accurate operation at the higher frequency.
  • the coupler is fabricated by the milling of channels within the surface of a metallic plate, typically aluminum.
  • the channels are provided with a square cross-section, the channel being closed off by a cover plate which mates with the base plate within which the channels have been milled.
  • the coupler has four ports, each port being formed of a coaxial line wherein the center conductor is constructed as a bar of square cross-section which is fabricated of a metal, such as aluminum.
  • the center conductors are located within the channels by dielectric spaces, positioned approximately one-quarter wavelength apart at the mid- band frequency.
  • Coupling the electromagnetic energy from one port to another is accomplished by a window oriented at approximately 45° relative to a port axis.
  • the central conductor joining one pair of ports is brought in close proximity, at the window, to a central conductor joining the other pair of ports.
  • the connection of the central conductor is accomplished by a segment of square rod angled at approximately 45° relative to the central conductors of each of the ports in the pair of ports.
  • improved matching characteristics may be obtained, for example, by notching the interior bend between the bar segment and each of the central conductors in a pair of ports. Spacing between the segments of the central conductors at the window is maintained by a dielectric spacer element in the form of a frame having open spaces so that the major portion of the window is retained as an air or vacuum space. Dielectric retainers contact the central conductors in each pair of ports and clamp the segments at the window against the dielectric spacer to maintain the proper spacing between the transmission lines.
  • O PI clamping force is obtained by means of a thin-walled metallic cylinder which serves as a spring and which is located in notches machined into the base plate at sites of low electromagnetic field strength.
  • the cylindrical springs have no more than a negligible effect on the propagation of electromagnetic energy within the coupler.
  • the retainers and the cylindrical springs are readily inserted through the open top portion of the channels.
  • the central conductor elements, the spaces, the separator, the retainers and the cylindrical springs can all be inserted through the open sides of the channel prior to the closing of the channel with the cover plate.
  • FIG. 1 is a simplified isometric view, partially cut away, showing a hybrid coupler constructed in accordance with the principles of the invention
  • FIG. 2 is a plan view of the hybrid coupler of FIG. 1; and FIG. 3 is an elevation view of a separator shown in FIG. 1 and 2.
  • a hybrid coupler 10 incorporating the invention is constructed of a base plate 12 and a cover plate 14.
  • Channels 16 are milled into the base plate 12 to form passageways for the transmission of electromagnetic energy.
  • the plates 12 and 14 are constructed of metal, preferably a light ⁇ weight metal, such as aluminum, which is also elec ⁇ trically conducting.
  • the channels 16 are provided with a square cross-section, the walls of the channels 16 serving as the outer conductors of coaxial transmission lines.
  • Central conductors 18 and 19 are provided within the channels 16, each of the conductors 18-19 being of square cross-section and being formed of a lightweight electrically conducting material, such as aluminum.
  • the hybrid coupler 10 has four ports; 21, 22, 23, and 24. Power entering the first port 21 is divided in a desired ratio between the second port 22 and the fourth port 24 where there is essentially no power exiting from the third port 23. An output voltage measure at the second port 22 will lead the corresponding output voltage measured at the fourth port 24 by 90° at all frequencies for which the ports are presented with reflectionless loads. 'No reflection will appear at these frequencies at the input port 21. As a practical matter in the design of such couplers, actual measured results deviate somewhat from the foregoing ideal situation because of the fact that the cross-sectional dimensions are not negligibly small as compared to a wavelength of the electromagnetic energy.
  • the coupling of the electromagnetic energy is accomplished by the close proximity of central portions 26 and 27, respectively, of the central conductors 18 and 19, each of the segments 26-27 being in the form of a bar of rectangular cross-section. Positioning of the conductors 18 and 19 within their respective channels 16 is accomplished with the aid of the dielectric spacers 28 positioned along the conductors 18 and 19 with spacings of approximately 1/4 wavelength of the mid-band frequency.
  • the coupling of the electromagnetic energy between the segments 26 and 27 is accomplished via a window 30 formed between the bottom of the milled-out region in the base plate 12 and the cover plate 14.
  • the sides of the window 30 terminate in metallic vanes 32 which extend at an approximately 45° angle relative to the axes of the channel 16.
  • the spacing between the ends of the vanes 12, this being the width of the window 30, is selected experimentally and has a length greater than one-quarter wavelength of the mid-band frequency.
  • the spacing S between the segments 26 and 27 is accurately maintained by a separator 34 formed as a frame of dielectric material with substantial air spaces between the members of the frame so as to provide for a substan- tial air dielectric between the segments 26 and 27.
  • the segments 26 and 27 are clamped against the separator 34 by dielectric retainers 36 having an arcuate shape for contacting the portions of the con ⁇ ductors 18-19 adjacent the ends of the segments 26-27.
  • Springs 38 are fashioned in the form of thin-walled metallic cylinders pressed against the retainers 36 to position them against the segments 26-27.
  • the springs 38 are located within notches 40 which are milled from the base plate 12 in the corner regions between the pair of channels 16 of the ports 21 and 24 and the pair of channels 16 of the ports 22 and 23.
  • the manufacture of the springs 38 of electrically conducting material and the siting of the springs 38 at a distance from the separator 34 and enclosed within the metallic walls of the notches 40 provides for the exertion of force against the segments 26-27 without any significant alteration of the electromagnetic field propagating through the channel 16.
  • the parallel walls of the notches 40 in combination with the cylindrical walls of the springs 38, permit the springs 38 to be readily inserted within the notches 40 at the time of assembly of the coupler 10.
  • the retainers 36, the separator 34 and the conductors 18 and 19 with the spacers 28 thereon are readily inserted, in a similar fashion, into the opened channels 16.
  • notches 42 are provided in the bends in the conductors 18 and 19 at the ends of the segments 26-27, the notches 42 being on the interior portions of the bends.
  • the notches provide for a tuning of the coupler 10 so as to provide a suitable impedance match over a band centered at the same portion of the spectral band as the greatest coupling of energy through the window 30. In the case of a frequency band extending from 4 - 6 GHz, the greatest coupling and a suitably matched impedance occurs over the frequency band.
  • a miter 44 is provided on the exterior portions of the foregoing bends at the termini of the segments 26-27 to further improve the foregoing matching and coupling character ⁇ istics.
  • the coupling through the window 30 occurs primarily in the region of air or vacuum dielectric as is provided by a frame 46 in the separator 34 and the openings 48 therein, which provide for the air or vacuum space.
  • the members of the frame 46 are suffi ⁇ ciently rigid to withstand the forces of the springs 38. Thereby, the positions of the conductors 18-19 are rigidly maintained.
  • grooves 50 are advantageously provided a short distance, typically 1/16 inch, back from the edges of the channels 16.
  • the grooves 15 are milled into the base plate 12.
  • Gaskets 52 of a rubber material containing metallic particles are placed within the grooves 50 prior to the closing of the cover plate 14. Pressure between the plates 12 and 14 compresses the gaskets 52 so as to provide a conducting path between the plates 12 and 14. This conducting path acts as a short circuit to electro ⁇ magnetic energy and thereby prevents leakage of such energy from the coupler 10.
  • the cross-section of the channels 16 bears a ratio of 5:2 relative to the cross- section of the conductor 18 or 19.
  • the other conductor of the coaxial line namely the walls of the channel 16
  • the cross-sectional dimensions of the conductor 18 or 19 is 0.2 inches square.
  • the foregoing example dimensions are cut in half so that the cross-section of a channel 16 measures 0.25 inches square and the cross-sectional dimension of the conductor 18 or 19 measures 0.1 inches square.
  • the spacing between the segments 26-27 is on the order of 20-30 thousandths inch depending on frequency and on the amount of coupling desired. Coupling ratios in the preferred embodiment are in the range of 3 dB to 12 dB (decibels). The spacing between the vanes 32 measures approximately 0.8 inches.
  • the coupler 10 also accommodates coaxial connectors (not shown) which are secured by screws placed in apertures 54 located within both of the plates 12 and 14 at the sites of the 0 ports 21-24.
  • a center conductor of the coaxial connector makes contact within a portion of the conductor 18-19 by means of a button 56 having a diameter approximately 0.12 inches and a length of approximately 0.05 inches. - ⁇
  • the buttons 56 serve as matching structure for minimizing reflection of electromagnetic waves from the coaxial connectors and circuitry connected thereto.
  • Such connectors are to be utilized at the terminals 22 and 24, while a dummy load (not shown) is to be connected 0 at the port 23.
  • the port 21 serves as an input port.
  • a hybrid coupler which provides improved impedance matching and relatively constant coupling in both amplitude and phase over a wide spectral band, while maintaining ease of construction and having adequate rigidity to withstand the vibrational and other forces associated with a satellite.

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  • Control Of Motors That Do Not Use Commutators (AREA)
  • Aerials With Secondary Devices (AREA)
PCT/US1983/001991 1983-02-23 1983-12-16 Square conductor coaxial coupler WO1984003395A1 (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
DE8484900444T DE3379138D1 (en) 1983-02-23 1983-12-16 Square conductor coaxial coupler

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
US06/468,826 US4539534A (en) 1983-02-23 1983-02-23 Square conductor coaxial coupler

Publications (1)

Publication Number Publication Date
WO1984003395A1 true WO1984003395A1 (en) 1984-08-30

Family

ID=23861398

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/US1983/001991 WO1984003395A1 (en) 1983-02-23 1983-12-16 Square conductor coaxial coupler

Country Status (7)

Country Link
US (1) US4539534A (GUID-C5D7CC26-194C-43D0-91A1-9AE8C70A9BFF.html)
EP (1) EP0135508B1 (GUID-C5D7CC26-194C-43D0-91A1-9AE8C70A9BFF.html)
JP (1) JPS60500594A (GUID-C5D7CC26-194C-43D0-91A1-9AE8C70A9BFF.html)
CA (1) CA1208721A (GUID-C5D7CC26-194C-43D0-91A1-9AE8C70A9BFF.html)
DE (1) DE3379138D1 (GUID-C5D7CC26-194C-43D0-91A1-9AE8C70A9BFF.html)
IT (1) IT1177570B (GUID-C5D7CC26-194C-43D0-91A1-9AE8C70A9BFF.html)
WO (1) WO1984003395A1 (GUID-C5D7CC26-194C-43D0-91A1-9AE8C70A9BFF.html)

Cited By (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO1987002188A1 (en) * 1985-09-26 1987-04-09 Hughes Aircraft Company Device for coupling microwave energy
US4810982A (en) * 1987-10-23 1989-03-07 Hughes Aircraft Company Coaxial transmission-line matrix including in-plane crossover
EP0313059A3 (en) * 1987-10-23 1990-12-27 Hughes Aircraft Company Coaxial hybrid coupler and crossing element
WO2008019777A1 (de) * 2006-08-14 2008-02-21 Rohde & Schwarz Gmbh & Co. Kg Richtkoppler
EP2315308A2 (en) * 2004-04-15 2011-04-27 Cellmax Technologies AB Antenna feeding network

Families Citing this family (15)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE3617359C1 (de) * 1986-05-23 1987-10-01 Georg Dr-Ing Spinner 3-dB-Richtkoppler
US4872015A (en) * 1986-12-01 1989-10-03 Hughes Aircraft Company Satellite communications system for mobile users
DE602004028349D1 (de) * 2003-03-04 2010-09-09 Rohm & Haas Elect Mat Koaxiale wellenleitermikrostrukturen und verfahern zu ihrer bildung
KR100579211B1 (ko) * 2003-06-30 2006-05-11 엔드웨이브 코포레이션 전송 선로 방위 트랜지션
KR101593686B1 (ko) 2007-03-20 2016-02-12 누보트로닉스, 엘.엘.씨 일체화된 전자 요소들 및 이들의 형성 방법
EP1973189B1 (en) 2007-03-20 2012-12-05 Nuvotronics, LLC Coaxial transmission line microstructures and methods of formation thereof
US20110123783A1 (en) 2009-11-23 2011-05-26 David Sherrer Multilayer build processses and devices thereof
US8866300B1 (en) 2011-06-05 2014-10-21 Nuvotronics, Llc Devices and methods for solder flow control in three-dimensional microstructures
KR101982887B1 (ko) 2011-07-13 2019-05-27 누보트로닉스, 인크. 전자 및 기계 구조체들을 제조하는 방법들
US9306254B1 (en) 2013-03-15 2016-04-05 Nuvotronics, Inc. Substrate-free mechanical interconnection of electronic sub-systems using a spring configuration
US9306255B1 (en) 2013-03-15 2016-04-05 Nuvotronics, Inc. Microstructure including microstructural waveguide elements and/or IC chips that are mechanically interconnected to each other
WO2015109208A2 (en) 2014-01-17 2015-07-23 Nuvotronics, Llc Wafer scale test interface unit: low loss and high isolation devices and methods for high speed and high density mixed signal interconnects and contactors
US10847469B2 (en) 2016-04-26 2020-11-24 Cubic Corporation CTE compensation for wafer-level and chip-scale packages and assemblies
WO2016094129A1 (en) 2014-12-03 2016-06-16 Nuvotronics, Inc. Systems and methods for manufacturing stacked circuits and transmission lines
US10319654B1 (en) 2017-12-01 2019-06-11 Cubic Corporation Integrated chip scale packages

Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE1183145B (de) * 1963-03-15 1964-12-10 Siemens Ag Richtungskoppler
DE1264549B (de) * 1966-04-29 1968-03-28 Spinner Georg 3-db-Richtungskoppler (Leistungsteiler) fuer HF-Leitungen
US3388350A (en) * 1965-05-21 1968-06-11 Jesse L. Butler Microwave transmission line apparatus having flexibly connected displaceable conductor
FR1557098A (GUID-C5D7CC26-194C-43D0-91A1-9AE8C70A9BFF.html) * 1967-12-21 1969-02-14
US4119931A (en) * 1976-07-06 1978-10-10 Hughes Aircraft Company Transmission line switch

Family Cites Families (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2657361A (en) * 1950-01-27 1953-10-27 Sperry Corp Coaxial directional coupler
US2679632A (en) * 1950-06-28 1954-05-25 Bell Telephone Labor Inc Directional coupler
DE2016801C3 (de) * 1970-04-08 1973-11-15 Siemens Ag, 1000 Berlin U. 8000 Muenchen Richtkoppler aus einem Doppel leitungsabschmtt
DE2434144C3 (de) * 1974-07-16 1980-03-13 Georg Dipl.-Ing. Dr.-Ing. 8152 Feldkirchen-Westerham Spinner Koaxialer Richtungskoppler mit einstellbarer Koppeldämpfung
SU557443A1 (ru) * 1975-06-18 1977-05-05 Предприятие П/Я А-1178 Виброустойчивый подстроечный шлейф

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE1183145B (de) * 1963-03-15 1964-12-10 Siemens Ag Richtungskoppler
US3388350A (en) * 1965-05-21 1968-06-11 Jesse L. Butler Microwave transmission line apparatus having flexibly connected displaceable conductor
DE1264549B (de) * 1966-04-29 1968-03-28 Spinner Georg 3-db-Richtungskoppler (Leistungsteiler) fuer HF-Leitungen
FR1557098A (GUID-C5D7CC26-194C-43D0-91A1-9AE8C70A9BFF.html) * 1967-12-21 1969-02-14
US4119931A (en) * 1976-07-06 1978-10-10 Hughes Aircraft Company Transmission line switch

Cited By (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO1987002188A1 (en) * 1985-09-26 1987-04-09 Hughes Aircraft Company Device for coupling microwave energy
US4810982A (en) * 1987-10-23 1989-03-07 Hughes Aircraft Company Coaxial transmission-line matrix including in-plane crossover
EP0313059A3 (en) * 1987-10-23 1990-12-27 Hughes Aircraft Company Coaxial hybrid coupler and crossing element
EP0313058A3 (en) * 1987-10-23 1991-01-02 Hughes Aircraft Company Coaxial transmission-line matrix including in-plane crossover
EP2315308A2 (en) * 2004-04-15 2011-04-27 Cellmax Technologies AB Antenna feeding network
EP1735871B1 (en) * 2004-04-15 2017-05-31 Cellmax Technologies AB Antenna feeding network
WO2008019777A1 (de) * 2006-08-14 2008-02-21 Rohde & Schwarz Gmbh & Co. Kg Richtkoppler
US7859361B2 (en) 2006-08-14 2010-12-28 Rohde & Schwarz Gmbh & Co. Kg Directional coupler

Also Published As

Publication number Publication date
EP0135508B1 (en) 1989-02-01
CA1208721A (en) 1986-07-29
IT8447730A0 (it) 1984-02-21
DE3379138D1 (en) 1989-03-09
EP0135508A1 (en) 1985-04-03
US4539534A (en) 1985-09-03
IT1177570B (it) 1987-08-26
JPH0374962B2 (GUID-C5D7CC26-194C-43D0-91A1-9AE8C70A9BFF.html) 1991-11-28
JPS60500594A (ja) 1985-04-25

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