WO1998056094A1 - Limiteur de surtension coaxial avec derivation thermique a securite integree - Google Patents

Limiteur de surtension coaxial avec derivation thermique a securite integree Download PDF

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Publication number
WO1998056094A1
WO1998056094A1 PCT/US1998/011342 US9811342W WO9856094A1 WO 1998056094 A1 WO1998056094 A1 WO 1998056094A1 US 9811342 W US9811342 W US 9811342W WO 9856094 A1 WO9856094 A1 WO 9856094A1
Authority
WO
WIPO (PCT)
Prior art keywords
transmission line
surge suppressor
surge
shunt
suppressor element
Prior art date
Application number
PCT/US1998/011342
Other languages
English (en)
Inventor
David L. Rawlings
Prem G. Chandran
Israel Moskovitch
Original Assignee
Porta Systems Corporation
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 Porta Systems Corporation filed Critical Porta Systems Corporation
Priority to EP98925186A priority Critical patent/EP0916176A4/fr
Publication of WO1998056094A1 publication Critical patent/WO1998056094A1/fr

Links

Classifications

    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01TSPARK GAPS; OVERVOLTAGE ARRESTERS USING SPARK GAPS; SPARKING PLUGS; CORONA DEVICES; GENERATING IONS TO BE INTRODUCED INTO NON-ENCLOSED GASES
    • H01T4/00Overvoltage arresters using spark gaps
    • H01T4/08Overvoltage arresters using spark gaps structurally associated with protected apparatus
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02HEMERGENCY PROTECTIVE CIRCUIT ARRANGEMENTS
    • H02H7/00Emergency protective circuit arrangements specially adapted for specific types of electric machines or apparatus or for sectionalised protection of cable or line systems, and effecting automatic switching in the event of an undesired change from normal working conditions
    • H02H7/24Emergency protective circuit arrangements specially adapted for specific types of electric machines or apparatus or for sectionalised protection of cable or line systems, and effecting automatic switching in the event of an undesired change from normal working conditions for spark-gap arresters

Definitions

  • the present invention relates generally to surge suppressor circuits for electrical equipment and more particularly relates to a surge suppressor circuit having a thermally activated fail-safe shunting device.
  • Surge suppressor circuits for protecting sensitive electronic equipment are well known in the prior art. These circuits typically present a high impedance (open circuit) to circuit ground under normal signal conditions and present a low impedance (short circuit) to circuit ground when a voltage or a current exceeds a predetermined threshold. For momentary voltage or current surges, such a lightning and noise spikes, the surge suppressor components are only activated for a short duration. In this condition, there is little thermal heating of the surge suppressing device typically used in such circuits. However, in those cases where a signal line being protected contacts a constant voltage supply line whose voltage exceeds the threshold voltage of the surge suppressor circuit, the surge suppressor continually conducts to circuit ground. This results in severe heating of the device. Absent thermal protection, this constant heating condition can result in a fire or in the failure of the surge suppressor. OBJECTS AND SUMMARY OF THE INVENTION
  • the present invention provides a coaxial surge suppressor circuit with a thermally activated fail-safe shunting circuit.
  • a surge protector for electrical signal communication or transmission lines such as for the transmission of data or telephony signals, includes a transmission line having associated therewith a circuit ground, and a surge suppressor element electrically coupled between the transmission line and circuit ground.
  • a thermally activated shunt assembly is thermally coupled to the surge suppressor element. The thermally activated shunt assembly senses an overheating condition with respect to the surge suppressor element and electrically shunts the surge suppressor element upon sensing the overheating condition.
  • Figure 1 is a schematic diagram of a coaxial surge protection circuit formed in accordance with the present invention.
  • Figure 2 is a top plan view of a partially assembled coaxial surge protection circuit formed in accordance with the present invention, illustrating a printed circuit board and a thermally removably engaged electrical insulating layer.
  • Figure 3 is a cross-sectional view of a conductive shunt, formed in accordance with the present invention.
  • Figure 4 is a cross-sectional view of a preferred embodiment of a coaxial surge protection circuit, formed in accordance with the present invention.
  • Figure 5 is a top plan view of a base plate assembly including a spacer, gas discharge tube surge suppressor and shunt, formed in accordance with the present invention.
  • Figure 6 in an end view of a coaxial surge protection circuit formed in accordance with the present invention.
  • Figures 7a and 7b are top plan and cross-sectional views, respectively, of a base plate used to implement a preferred embodiment of the present invention.
  • Figures 8a and 8b are top plan and cross-sectional views, respectively, of a spacer used to implement a preferred embodiment of the present invention.
  • Figures 9a and 9b are top plan and cross-sectional views, respectively, of a base plate assembly used to implement a preferred embodiment of the present invention.
  • FIG. 1 is a schematic diagram of a coaxial surge protection device formed in accordance with the present invention.
  • the coaxial surge protector includes a transmission line 10 electrically coupling a first connector 12 (for example, an input signal connector) and a second connector 14 (for example, an output signal connector) with a substantially constant, characteristic impedance, such as 75 ohms ( ⁇ ).
  • the transmission line 10 is fabricated on a two-sided (copper-dielectric-copper) printed circuit board 20 ( Figure 2) using a microstrip topology in a manner well known in the art of radio frequency circuit design.
  • one conductive side 11 of the printed circuit board 20 (i.e., microstrip transmission line) carries the signals being transmitted, and is connected to the center conductors of the input and output connectors 12, 14, and the other conductive side 13 of the printed circuit board 20 is connected to circuit ground.
  • the CSP further includes a surge suppressor element 16. While there are many surge suppressor elements known in the art, i.e., M.O.V.'s, transorbs and the like, gas discharge tubes are preferred for use in the present invention.
  • the surge suppressor element includes at least one gas discharge tube (GDT) 16 electrically coupled between the transmission line 10 and circuit ground. Under normal signal conditions, the GDT 16 is effectively an open circuit and provides only a minimal detuning of the transmission line 10. However, when a surge condition (i.e., voltage exceeding a predetermined threshold value, such as 230 volts) is presented on the transmission line 10, the GDT 16 presents a low impedance to circuit ground for that voltage which exceeds the threshold voltage of the GDT 16.
  • a predetermined threshold value such as 230 volts
  • an important aspect of the present invention is a thermally activated shunt 18.
  • the shunt 18 In the presence of a temperature exceeding a predetermined threshold, the shunt 18 preferably permanently electrically couples the transmission line 10 to circuit ground, thereby bypassing the GDT 16 in a fail-safe manner.
  • FIGs 2-4 illustrate a preferred embodiment of the surge protector with a thermally activated shunt formed in accordance with the present invention.
  • a printed circuit board PCB 20 is illustrated with a conductive microstrip transmission line 10 interconnecting the center conductors of connectors 12 and 14.
  • One conductive side 11 of the printed circuit board 20 defining the microstrip transmission line 10 is shown connected to the center conductors of the connectors 12 and 14, while the other conductive side 13 of the printed circuit board is connected to circuit ground and to the outer conductors of connectors 12 and 14.
  • the transmission line 10, defined by printed circuit board 20, is situated in a cavity 15 defined by a metallic housing 17.
  • An electrically conductive block 19, preferably made of aluminum or other metal, is situated between and in contact with the inner wall of the housing and the other conductive side 13 of the printed circuit board 20, which forms a ground plane.
  • the housing 17, block 19 and ground plane 13 are at circuit ground.
  • the housing 17 includes sidewalls 28 which are stepped inwardly at their lower edges to define a shoulder 21 ( Figure 2), and further includes inwardly extending tabs 30 at its four corners, each tab having a hole for receiving screws for securing the housing to a base plate 23.
  • the base plate 23 forms a mounting plate, with associated holes in the four corners thereof for receiving mounting screws, for mounting the surge protector to a supporting structure.
  • the structure of the outer base plate 23 is shown in greater detail in Figures 5, 7a and 7b, and 9a and 9b.
  • the surge protector of the present invention further includes a spacer 25 for receiving the gas discharge tube 16, as shown in Figures 4, 5, 8a and 8b and 9a and
  • the spacer 25 is preferably mounted on the outer base plate 23 by press fitting and partially recessing it in the inner surface thereof.
  • the spacer 25 is preferably cylindrical in form and solid throughout its body and made from a conductive material, such as brass or other metal. However, a portion of the top surface of the spacer 25 is recessed to form a receiving well 27 for partially receiving one end of the gas discharge tube 16.
  • the spacer has a length which is selected so that the gas discharge tube is sandwiched between the top surface of the spacer 25 and the conductive side 11 of the printed circuit board 20. Stated another way, one terminal of the gas discharge tube 16 is electrically in contact with microstrip transmission line 10, and the other terminal of discharge tube 16 contacts spacer 25. Since spacer 25 is electrically conductive and in contact with base plate 23 and the rest of the housing, one side of the gas discharge tube 16 is at circuit ground.
  • a portion of the upper wall 29 defining the well 27 for receiving the end of the gas discharge tube 16 is preferably removed to the depth of the well to further accommodate receiving in the well of spacer 25 a cantilevered resilient spring member 24, as will be described in greater detail.
  • a thermally displaceable insulating layer 22 is applied to at least a portion of the exposed transmission line 10, i.e., mounted on the signal carrying conductive side
  • the insulating material 22 is selected such that it maintains electrical insulation at temperatures below a threshold temperature, and melts away and is permanently displaced at temperatures exceeding a predetermined threshold temperature.
  • One suitable material for use as the insulating material 22 is Mylar TM.
  • FIG 4 a preferred embodiment of the CSP of the present invention is illustrated. In this cross-sectional view, it can be seen that the gas discharge tube 16 resides in a cooperative relationship with an electrically and thermally conductive spring member 24.
  • the spring member 24, illustrated in Figure 3 is preferably formed from an electrically conductive and mechanically compliant material, such as beryllium copper or half-hardened brass.
  • the spring member 24 has a fixed end 24a which is electrically connected to circuit ground and in thermal communication with the GDT 16. More preferably, fixed end 24a of spring member 24 is a flattened portion of member 24 which is wedged between and held in place by one end of gas discharge tube 16 and spacer 25 so that it resides in the bottom of the well 27 formed in spacer 25 and extends outwardly at an angle through the removed area of the upper sidewall 29 of spacer 25 and is directed toward the transmission line (i.e., printed circuit board 20) to where the meltable insulating material 22 is situated.
  • the transmission line i.e., printed circuit board 20
  • the spring member 24 further includes a free end 24b preferably configured in a "V" shape which, when assembled as shown in Figure 4, is displaced and biased against the PCB 20 in alignment with the transmission line 10 and electrically insulating layer 22.
  • the insulating layer 22 prevents electrical contact between the spring member 24 and transmission line 10 under normal signal conditions.
  • the gas discharge tube 16 will normally handle such.
  • the gas discharge tube 16 is normally in a first, substantially non- conductive state when no appreciable surge occurs, but switches to a second, conductive state when a surge occurs that exceeds a predetermined voltage level, such as 230 volts.
  • the gas discharge tube 16 shorts the transmission line 10 (i.e., printed circuit board 20) to circuit ground to protect the electronic equipment, such as communications or telephony equipment, connected to the surge protector so that the voltage or current surge will not reach the electrical equipment.
  • the power surge ends the gas discharge tube 16 will return to its normal, non-conductive state.
  • a situation may arise, however, where a continuous excessive voltage or current is applied to the surge protector, for example, where the communication line connected to the surge protector contacts, and remains in contact with, a high voltage power line. Under such conditions, the gas discharge tube 16, which is shorting transmission line 10 to circuit ground, may overheat and fail, becoming non- conductive, which leaves no protection to the electrical equipment connected to the surge protector.
  • thermal energy from the gas discharge tube 16 is conducted along the spring member 24 and is presented to the electrically insulating layer 22.
  • the thermally displaceable insulating layer 22 melts and is displaced by the biasing force of the spring member 24.
  • the electrically insulating layer 22 is displaced, free end 24b of member 24 engages transmission line 10, and an electrical short circuit is presented from the transmission line 10 to circuit ground through the spring member 24. This effectively bypasses the gas discharge tube 16 and diverts current from tube 16 to the shunt formed by member 24 so that a major portion of the signal and surge voltage and current is conducted through the spring member 24 to circuit ground.
  • the spring member 24 is sized and shaped to provide both a low thermal and electrical resistance from the transmission line 10 to circuit ground, the risk of fire and the risk of equipment damage is permanently averted.
  • the short provided by spring 24 is preferably permanent and non-reversible so that a unit which has experienced overheating must be replaced rather than automatically resetting itself to a non-shorted condition.
  • a permanently shorted unit is preferred so that it can more easily be located by a service person and so that a unit, whose condition is questionable, will not remain in service.
  • the surge protector of the present invention complies with the requirements set for in the publication "Generic Requirements for Surge Protectors on Coaxial Lines at Customer's Premises" published by Bellcore, GR-2908-CORE, Issue 1, December 1995. This publication was attached as an appendix to provisional application serial no. 60/048,447, described previously, and it is incorporated herein by reference.

Abstract

Limiteur de surtension coaxial comprenant un boîtier (17) dans lequel est placée une ligne (10) de transmission sous forme d'une plaquette (20) de circuit imprimé à deux faces. Le limiteur de surtension comprend des connecteurs d'entrée (12) et de sortie (14) montés sur le boîtier et connectés à la ligne (10) de transmission, et un tube (16) à décharge gazeuse couplé électriquement entre la ligne (10) de transmission et la masse du circuit. Un ensemble (18) de dérivation à activation thermique est couplé thermiquement au tube (16) à décharge gazeuse et détecte le moment où le tube (16) à décharge gazeuse se trouve dans un état de surchauffe. Lorsqu'un tel état de surchauffe est détecté, l'ensemble de dérivation établit une dérivation électriquement conductrice en parallèle avec le tube (16) à décharge gazeuse pour dévier le courant traversant le tube (16) à décharge gazeuse et le conduire à la masse à travers l'ensemble (18) de dérivation, de manière à réduire la surchauffe additionnelle du tube (16) à décharge gazeuse.
PCT/US1998/011342 1997-06-03 1998-06-03 Limiteur de surtension coaxial avec derivation thermique a securite integree WO1998056094A1 (fr)

Priority Applications (1)

Application Number Priority Date Filing Date Title
EP98925186A EP0916176A4 (fr) 1997-06-03 1998-06-03 Limiteur de surtension coaxial avec derivation thermique a securite integree

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US4844797P 1997-06-03 1997-06-03
US60/048,447 1997-06-03

Publications (1)

Publication Number Publication Date
WO1998056094A1 true WO1998056094A1 (fr) 1998-12-10

Family

ID=21954640

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/US1998/011342 WO1998056094A1 (fr) 1997-06-03 1998-06-03 Limiteur de surtension coaxial avec derivation thermique a securite integree

Country Status (2)

Country Link
EP (1) EP0916176A4 (fr)
WO (1) WO1998056094A1 (fr)

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4918565A (en) * 1988-08-11 1990-04-17 King Larry J Electrical surge suppressor
US5122921A (en) * 1990-04-26 1992-06-16 Industrial Communication Engineers, Ltd. Device for electromagnetic static and voltage suppression
US5657196A (en) * 1994-12-08 1997-08-12 Tii Industries, Inc. Coaxial transmission line surge arrestor

Family Cites Families (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5566056A (en) * 1994-02-07 1996-10-15 Tii Industries, Inc. Coaxial transmission line surge arrestor

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4918565A (en) * 1988-08-11 1990-04-17 King Larry J Electrical surge suppressor
US5122921A (en) * 1990-04-26 1992-06-16 Industrial Communication Engineers, Ltd. Device for electromagnetic static and voltage suppression
US5657196A (en) * 1994-12-08 1997-08-12 Tii Industries, Inc. Coaxial transmission line surge arrestor

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
See also references of EP0916176A4 *

Also Published As

Publication number Publication date
EP0916176A4 (fr) 2000-08-09
EP0916176A1 (fr) 1999-05-19

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