EP0950253A1 - Relay magnet retention apparatus - Google Patents

Relay magnet retention apparatus

Info

Publication number
EP0950253A1
EP0950253A1 EP97952536A EP97952536A EP0950253A1 EP 0950253 A1 EP0950253 A1 EP 0950253A1 EP 97952536 A EP97952536 A EP 97952536A EP 97952536 A EP97952536 A EP 97952536A EP 0950253 A1 EP0950253 A1 EP 0950253A1
Authority
EP
European Patent Office
Prior art keywords
armature
pole pieces
core
electromagnetic relay
magnet
Prior art date
Legal status (The legal status 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 status listed.)
Granted
Application number
EP97952536A
Other languages
German (de)
French (fr)
Other versions
EP0950253B1 (en
Inventor
James Matthew Halter
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
TE Connectivity Corp
Original Assignee
Siemens Electromechanical Components GmbH and Co KG
Siemens Electromechanical Components Inc
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 Siemens Electromechanical Components GmbH and Co KG, Siemens Electromechanical Components Inc filed Critical Siemens Electromechanical Components GmbH and Co KG
Publication of EP0950253A1 publication Critical patent/EP0950253A1/en
Application granted granted Critical
Publication of EP0950253B1 publication Critical patent/EP0950253B1/en
Anticipated expiration legal-status Critical
Expired - Lifetime legal-status Critical Current

Links

Classifications

    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01HELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
    • H01H50/00Details of electromagnetic relays
    • H01H50/02Bases; Casings; Covers
    • H01H50/04Mounting complete relay or separate parts of relay on a base or inside a case
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01HELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
    • H01H51/00Electromagnetic relays
    • H01H51/22Polarised relays

Definitions

  • the present invention relates to an electromagnetic relay featuring structure which retains the magnet in place during assembly and operation.
  • Electromagnetic relays generally include a frame structure for receiving a permanent magnet coupled magnetically between an electromagnetic block and an armature.
  • cut-out portions along the magnet's perimeter align with posts protruding from a bobbin on the electromagnetic block to retain the magnet in place.
  • Retention features for example deformable plastic tabs located on the bobbin or other part of the frame, prevent the magnet from backing out.
  • these retention features retain the magnet on the block, however, in assembling the relay additional labor is required to align the magnet with the posts and in fixing the retention features. Further, the retention features may loosen their hold on the magnet over time due to the operation of the relay. Further still, since cutout portions are provided on the magnet, the magnet's magnetism is reduced.
  • the principal objective of this invention is to provide improvements in the frame structure of an electromagnetic relay which permit controlled retention of the magnet assembly both during assembly and in operation.
  • an electromagnetic relay having an insulating base, an electromagnet block on the base which includes a permanent magnet, a core, a bobbin, at least one winding about the core, and a pair of pole pieces extending substantially perpendicularly from the core.
  • At least one magnet retention element is formed on at least one of the pole pieces in a position to retain the permanent magnet in operative juxtaposition relative to the bobbin.
  • the invention also provides an electromagnetic relay comprising an insulating base and an electromagnet block on the base having a core and a pair of pole pieces extending perpendicularly from the ends of the core.
  • the relay further comprises an elongate armature pivotally supported at its central portion and a permanent magnet coupled magnetically between the core and the armature.
  • the magnet induces the same magnetic poles in both the pole pieces and provides an opposite pole in closely adjacent relationship to the central portion of the armature.
  • At least one of the pole pieces includes a magnet retention element positioned to retain the permanent magnet in operative position.
  • At least one movable contact spring is fixedly connected to the armature at a portion intermediate the ends thereof and being formed with contact arms in the vicinity of either armature end portion.
  • the contact arms carry movable contacts to be moved according to the armature movement in and out of contact with corresponding fixed contacts mounted on the base.
  • a pair of torsion pivot arms extend transversely in opposite directions from the at least one contact spring along the pivot axis of the armature. The distal end of either pivot arm is fixedly connected to a support extending on either side of the armature and being part of or fixedly connected to the electromagnetic block.
  • a conductor connecting the contact arms with a movable contact terminal is mounted on the base.
  • the invention provides that the magnet retention element formed on the at least one of the pole pieces retains the magnet in place between the electromagnetic block and the armature. During operation the magnet retention element prevents the magnet from moving out of position.
  • the permanent magnet consists of a bar- shaped or plate-shaped three-pole magnetized permanent magnet disposed between the free ends of the pole pieces, which magnet is magnetized to have the same poles at its lengthwise ends adjacent to the pole pieces and to have the opposite pole intermediate its ends adjacent to the central portion of the armature which is balanced upon this pole.
  • FIG. 1 is an exploded perspective view of a relay constructed in accordance with the present invention
  • FIG. 2 is a perspective view of the relay of FIG. 1 showing details of the magnet retention structure of the present invention
  • FIG. 3 is an enlarged perspective view of the magnet retention structure in accordance with one embodiment of the present invention
  • FIG. 4 is a perspective view of the assembled relay of FIG. 1; and FIG. 5 is an exploded perspective view of an alternative embodiment of the relay;
  • the relay is of bistable operation and of single-pole double-throw contact arrangement.
  • the relay comprises a base 10 of insulating material which defines a main or bottom plane for the relay.
  • a pair of stationary or fixed contact terminals 11 and 12 are fastened in the base 10; these fixed terminals 11 and 12 are disposed perpendicular to the bottom plane and are provided with fixed contacts 13 and 14.
  • a movable contact terminal 15 is disposed parallel to the fixed contact terminals. All the terminals are inserted into slots 16 (not visible) in the base 10 and are fixed by caulking or by any other suitable sealant or method. Further, coil terminals 17 and 18 and a common coil terminal 19 are fastened in the base 10 in a similar manner.
  • a pair of suppression resistors 20 or other components may be arranged on the base 10 and connected to the coil terminals 17, 18 and 19 by clamping their wires between clamping nuts 21 in the base and fork-like clamping claws 22 of the respective coil terminals.
  • the common coil terminal 19 as well as one of the suppression resistors 20 may be omitted.
  • An electromagnet block 30 arranged on the base 10 comprises a bobbin 31 with a pair of coils 32 and 33 wound thereon between end flanges 34 and 35 and a center flange 36.
  • An iron core 37 of cylindrical shape is inserted axially into the bobbin and coils and is coupled at its ends to a pair of plates-like pole pieces 38 and 39 which are arranged in recesses 341 and 351, respectively, of the end flanges 34 and 35 and are provided with through holes 381 and 391, respectively, corresponding in diameter to the core 37.
  • a plate-like elongate permanent magnet 40 is disposed along one lateral side of the bobbin in a plane perpendicular to the base plane and bridging the end flanges 34 and 35 as well as the pole pieces 38 and 39.
  • a magnet retention element 42 is formed on each of the pole pieces 38 and 39 to prevent the magnet 40 from backing out. As shown in Figures 2 and 3, the retention element 42 is a projection extending inwardly from a planar surface 41 of each pole piece 38 and 39. The projection is preferably stamped into each of the pole pieces 38 and 39.
  • the permanent magnet 40 is magnetized in a three-pole manner so as to have the same magnetic poles (south poles S) at both ends and the opposite pole (north pole N) in its center.
  • An elongate, plate-like armature 50 which is slightly bent into a V-shape, is balanced on the center pole N of the permanent magnet 40 so as to form air gaps between its end portions and either one of the pole pieces 38 and 39.
  • Either end of the armature is divided into a pair of legs 51 and 52, respectively, by means of recesses 53 and 54, respectively.
  • a strip-like movable contact spring 55 which is made from a resilient material like stainless steel, is fastened to the central part of the armature 50 by means of rivets 56 or the like.
  • a pair of movable contacts 57 and 58 are fixed to the ends of the movable spring 55 by welding or any other suitable method. Since the movable spring 55 is made from a metal having poor conductivity, a flexible composite copper braid 62 is welded directly between the movable contacts 57 and 58 and the movable spring 55 to carry the load current between these movable contacts and the movable contact terminal 15.
  • the movable spring has a pair of torsion pivot arms 59 extending transversely in opposite directions from a central portion thereof and defining a pivot axis for the armature 50.
  • Each of the pivot arms 59 has an eyelet 60 for fastening the movable spring 55 and the armature 50 on the center flange 36 of the bobbin 30.
  • the bobbin 30 forms a pair of posts 43 extending from the center flange 36 on either side of the armature, and the pivot arms may be fastened by any suitable method.
  • the armature 50 In operation which the coils 32 and 33 are de- energized, the armature 50 is held or kept latched in either of the two stable positions on either one of the pole pieces 38 or 39, respectively.
  • a voltage pulse is applied across an appropriate coil 32 or 33 in case of a dual input wiring.
  • the two coils 32 and 33 are wound in a common direction and have end terminals 44 and 45 as well as a common terminal 46.
  • Armature transfer will occur by applying a voltage pulse across one of the coils 32 or 33.
  • the two coils 32 and 33 are connected in series, and the center winding terminal 46 as well as the common coil terminal 19 can be omitted. In this case, armature transfer will occur by toggling the voltage pulse polarity across the two coils 32 and 33 connected in series.
  • FIG. 5 An exploded view of an alternative embodiment of the electromagnetic relay is shown by Figure 5.
  • the relay generally operates in the same manner and comprises the same components as the relay shown by Figures 1-4, except for the pair of torsion pivot arms 59 included in the latter.
  • a magnet 100 is secured to a bobbin 102 by two pole pieces 104 and 106 having a magnet retention element 108 to prevent the magnet 100 from backing out.
  • a movable spring 110 is fastened to an armature 112 on a center flange 114 of the bobbin 102 by means of rivets 116 or the like.
  • a pair of movable contacts 118 and 120 are fixed to the ends of the movable spring 110 by welding or any other suitable method.
  • the bobbin 102 is provided on a base 122 having a bottom plane which is perpendicular to fixed terminals 124 and 126.
  • Fixed contacts 128 and 130 are disposed through fixed terminals 124 and 126 and braid 132 to secure the fixed terminals 124 and 126 to the relay.
  • the central part of the braid 132 is welded to terminal 134.
  • winding terminals 136, 138 and 140 which are anchored in the bobbin flanges 142, 144 and 146, are connected by welding or any other suitable method to coil terminals 148, 150 and 152 to fully assemble the relay.
  • the embodiments described herein are merely illustrative of the principles of the present invention. Various modifications may be made thereto by persons ordinarily skilled in the art, without departing from the scope or spirit of the invention.

Landscapes

  • Physics & Mathematics (AREA)
  • Electromagnetism (AREA)
  • Electromagnets (AREA)
  • Relay Circuits (AREA)
  • Arc-Extinguishing Devices That Are Switches (AREA)

Abstract

An electromagnetic relay includes a base, an electromagnet block including a permanent magnet, a core, a bobbin, a winding about the core, and a pair of pole pieces extending perpendicularly from the core. The relay includes at least one magnet retention element formed on at least one of the pole pieces to retain the magnet in operative juxtaposition.

Description

RELAY MAGNET RETENTION APPARATUS
Related Application This application is related to U.S. Patent 5,587,693, entitled "Polarized Electromagnetic Relay", filed on August 7, 1995, issued on December 24, 1996, and assigned to the same assignee as that of the present application.
TECHNICAL FIELD OF THE INVENTION
The present invention relates to an electromagnetic relay featuring structure which retains the magnet in place during assembly and operation.
BACKGROUND OF THE INVENTION
Electromagnetic relays generally include a frame structure for receiving a permanent magnet coupled magnetically between an electromagnetic block and an armature. Generally, cut-out portions along the magnet's perimeter align with posts protruding from a bobbin on the electromagnetic block to retain the magnet in place. Retention features, for example deformable plastic tabs located on the bobbin or other part of the frame, prevent the magnet from backing out. Although these retention features retain the magnet on the block, however, in assembling the relay additional labor is required to align the magnet with the posts and in fixing the retention features. Further, the retention features may loosen their hold on the magnet over time due to the operation of the relay. Further still, since cutout portions are provided on the magnet, the magnet's magnetism is reduced.
SUMMARY OF THE INVENTION The principal objective of this invention is to provide improvements in the frame structure of an electromagnetic relay which permit controlled retention of the magnet assembly both during assembly and in operation. These and other objects are achieved by the present invention which provides an electromagnetic relay having an insulating base, an electromagnet block on the base which includes a permanent magnet, a core, a bobbin, at least one winding about the core, and a pair of pole pieces extending substantially perpendicularly from the core. At least one magnet retention element is formed on at least one of the pole pieces in a position to retain the permanent magnet in operative juxtaposition relative to the bobbin. The invention also provides an electromagnetic relay comprising an insulating base and an electromagnet block on the base having a core and a pair of pole pieces extending perpendicularly from the ends of the core. The relay further comprises an elongate armature pivotally supported at its central portion and a permanent magnet coupled magnetically between the core and the armature. The magnet induces the same magnetic poles in both the pole pieces and provides an opposite pole in closely adjacent relationship to the central portion of the armature. At least one of the pole pieces includes a magnet retention element positioned to retain the permanent magnet in operative position. At least one movable contact spring is fixedly connected to the armature at a portion intermediate the ends thereof and being formed with contact arms in the vicinity of either armature end portion. The contact arms carry movable contacts to be moved according to the armature movement in and out of contact with corresponding fixed contacts mounted on the base. A pair of torsion pivot arms extend transversely in opposite directions from the at least one contact spring along the pivot axis of the armature. The distal end of either pivot arm is fixedly connected to a support extending on either side of the armature and being part of or fixedly connected to the electromagnetic block. A conductor connecting the contact arms with a movable contact terminal is mounted on the base. Advantageously, the invention provides that the magnet retention element formed on the at least one of the pole pieces retains the magnet in place between the electromagnetic block and the armature. During operation the magnet retention element prevents the magnet from moving out of position.
Preferably, the permanent magnet consists of a bar- shaped or plate-shaped three-pole magnetized permanent magnet disposed between the free ends of the pole pieces, which magnet is magnetized to have the same poles at its lengthwise ends adjacent to the pole pieces and to have the opposite pole intermediate its ends adjacent to the central portion of the armature which is balanced upon this pole.
BRIEF DESCRIPTION OF THE DRAWINGS
For better understanding of the invention, reference is made to the following description of an exemplary embodiment thereof, and to the accompanying drawings wherein: FIG. 1 is an exploded perspective view of a relay constructed in accordance with the present invention;
FIG. 2 is a perspective view of the relay of FIG. 1 showing details of the magnet retention structure of the present invention ; FIG. 3 is an enlarged perspective view of the magnet retention structure in accordance with one embodiment of the present invention;
FIG. 4 is a perspective view of the assembled relay of FIG. 1; and FIG. 5 is an exploded perspective view of an alternative embodiment of the relay;
DETAILED DESCRIPTION
Referring now to Figure 1, there is shown an electromagnetic relay of the present invention. The relay is of bistable operation and of single-pole double-throw contact arrangement. The relay comprises a base 10 of insulating material which defines a main or bottom plane for the relay. A pair of stationary or fixed contact terminals 11 and 12 are fastened in the base 10; these fixed terminals 11 and 12 are disposed perpendicular to the bottom plane and are provided with fixed contacts 13 and 14. A movable contact terminal 15 is disposed parallel to the fixed contact terminals. All the terminals are inserted into slots 16 (not visible) in the base 10 and are fixed by caulking or by any other suitable sealant or method. Further, coil terminals 17 and 18 and a common coil terminal 19 are fastened in the base 10 in a similar manner. A pair of suppression resistors 20 or other components may be arranged on the base 10 and connected to the coil terminals 17, 18 and 19 by clamping their wires between clamping nuts 21 in the base and fork-like clamping claws 22 of the respective coil terminals. In a single input version (not shown) , the common coil terminal 19 as well as one of the suppression resistors 20 may be omitted.
An electromagnet block 30 arranged on the base 10 comprises a bobbin 31 with a pair of coils 32 and 33 wound thereon between end flanges 34 and 35 and a center flange 36. An iron core 37 of cylindrical shape is inserted axially into the bobbin and coils and is coupled at its ends to a pair of plates-like pole pieces 38 and 39 which are arranged in recesses 341 and 351, respectively, of the end flanges 34 and 35 and are provided with through holes 381 and 391, respectively, corresponding in diameter to the core 37.
A plate-like elongate permanent magnet 40 is disposed along one lateral side of the bobbin in a plane perpendicular to the base plane and bridging the end flanges 34 and 35 as well as the pole pieces 38 and 39. A magnet retention element 42 is formed on each of the pole pieces 38 and 39 to prevent the magnet 40 from backing out. As shown in Figures 2 and 3, the retention element 42 is a projection extending inwardly from a planar surface 41 of each pole piece 38 and 39. The projection is preferably stamped into each of the pole pieces 38 and 39.
The permanent magnet 40 is magnetized in a three-pole manner so as to have the same magnetic poles (south poles S) at both ends and the opposite pole (north pole N) in its center. An elongate, plate-like armature 50 which is slightly bent into a V-shape, is balanced on the center pole N of the permanent magnet 40 so as to form air gaps between its end portions and either one of the pole pieces 38 and 39. Either end of the armature is divided into a pair of legs 51 and 52, respectively, by means of recesses 53 and 54, respectively.
A strip-like movable contact spring 55 which is made from a resilient material like stainless steel, is fastened to the central part of the armature 50 by means of rivets 56 or the like. A pair of movable contacts 57 and 58 are fixed to the ends of the movable spring 55 by welding or any other suitable method. Since the movable spring 55 is made from a metal having poor conductivity, a flexible composite copper braid 62 is welded directly between the movable contacts 57 and 58 and the movable spring 55 to carry the load current between these movable contacts and the movable contact terminal 15.
The movable spring has a pair of torsion pivot arms 59 extending transversely in opposite directions from a central portion thereof and defining a pivot axis for the armature 50. Each of the pivot arms 59 has an eyelet 60 for fastening the movable spring 55 and the armature 50 on the center flange 36 of the bobbin 30. For receiving the pivot arms 59, the bobbin 30 forms a pair of posts 43 extending from the center flange 36 on either side of the armature, and the pivot arms may be fastened by any suitable method.
When the relay parts are assembled along the broken lines shown in Figure 1, the central part of the braid 62 is welded to the terminal 15. Further, winding terminals 44, 45 and 46 which are anchored in the bobbin flanges 34, 35 and 36, are connected by welding or any other suitable method to the coil terminals 17, 18 and 19. The assembled relay is shown in Figure 4. A plastic cap, not shown, may be put over the assembled relay to form a closed casing together with the base 10.
In operation which the coils 32 and 33 are de- energized, the armature 50 is held or kept latched in either of the two stable positions on either one of the pole pieces 38 or 39, respectively. For moving the armature from one position to the other, a voltage pulse is applied across an appropriate coil 32 or 33 in case of a dual input wiring. In this case, the two coils 32 and 33 are wound in a common direction and have end terminals 44 and 45 as well as a common terminal 46. Armature transfer will occur by applying a voltage pulse across one of the coils 32 or 33. In case of a single input wiring, the two coils 32 and 33 are connected in series, and the center winding terminal 46 as well as the common coil terminal 19 can be omitted. In this case, armature transfer will occur by toggling the voltage pulse polarity across the two coils 32 and 33 connected in series.
An exploded view of an alternative embodiment of the electromagnetic relay is shown by Figure 5. The relay generally operates in the same manner and comprises the same components as the relay shown by Figures 1-4, except for the pair of torsion pivot arms 59 included in the latter. Specifically, a magnet 100 is secured to a bobbin 102 by two pole pieces 104 and 106 having a magnet retention element 108 to prevent the magnet 100 from backing out.
When the relay parts are assembled along the broken lines shown in Figure 5, a movable spring 110 is fastened to an armature 112 on a center flange 114 of the bobbin 102 by means of rivets 116 or the like. A pair of movable contacts 118 and 120 are fixed to the ends of the movable spring 110 by welding or any other suitable method. The bobbin 102 is provided on a base 122 having a bottom plane which is perpendicular to fixed terminals 124 and 126. Fixed contacts 128 and 130 are disposed through fixed terminals 124 and 126 and braid 132 to secure the fixed terminals 124 and 126 to the relay. The central part of the braid 132 is welded to terminal 134. Further, winding terminals 136, 138 and 140 which are anchored in the bobbin flanges 142, 144 and 146, are connected by welding or any other suitable method to coil terminals 148, 150 and 152 to fully assemble the relay. The embodiments described herein are merely illustrative of the principles of the present invention. Various modifications may be made thereto by persons ordinarily skilled in the art, without departing from the scope or spirit of the invention.

Claims

WHAT IS CLAIMED IS:
1. In an electromagnetic relay having an insulating base, an electromagnet block on the base, the electromagnet block including a permanent magnet, a core, a bobbin, at least one winding about the core, and a pair of pole pieces extending substantially perpendicularly from the core, the improvement comprising at least one magnet retention element formed on at least one of the pole pieces in a position to retain the permanent magnet in operative juxtaposition relative to the bobbin.
2. The electromagnetic relay of claim 1, wherein the magnet retention structure comprises at least one projection extending from each of the pole pieces.
3. The electromagnetic relay of claim 2 , wherein the at least one projection is stamped into each of the pole pieces.
4. An electromagnetic relay, comprising: an insulating base defining a bottom plane; an electromagnet block on the base having a core, means for exciting a coil including a bobbin and at least one winding about the core, and a pair of pole pieces extending perpendicularly from the ends of said core; an elongate armature pivotally supported at its central portion to be movable about a center pivot axis for angular movement between two contact operating positions, either end portion of the armature on either side of the pivot axis defining an air gap with one of said pole pieces; a permanent magnet coupled magnetically between said core and said armature so as to induce the same magnetic poles in both said pole pieces and to provide an opposite pole in closely adjacent relationship to said central portion of the armature, at least one of the pole pieces including a magnet retention element positioned to retain the permanent magnet in operative position; at least one movable contact spring fixedly connected to the armature at a portion intermediate the ends thereof and being formed with contact arms in the vicinity of either armature end portion, said contact arms carrying movable contacts to be moved according to the armature movement in and out of contact with corresponding fixed contacts mounted on said base; a pair of torsion pivot arms extending transversely in opposite directions from said at least one contact spring along the pivot axis of said armature, the distal end of either pivot arm being fixedly connected to a support extending on either side of the armature and being part of or fixedly connected to said electromagnetic block; and a conductor connecting said contact arms with a movable contact terminal mounted on said base.
5. The electromagnetic relay of claim 4, wherein the permanent magnet and said armature are arranged along a lateral side of said bobbin, said pivot axis as well as said fixed and moveable contact terminals extending essentially perpendicular to said bottom plane.
6. The electromagnetic relay of claim 4, wherein the movable contact terminal is disposed parallel to said fixed contacts.
7. The electromagnetic relay of claim 4 , wherein the permanent magnet is a three-pole magnetized magnet.
8. The electromagnetic relay of claim 4 , wherein a cap is placed over the electromagnetic relay to form a closed casing together with said base.
EP97952536A 1997-01-06 1997-12-17 Relay magnet retention apparatus Expired - Lifetime EP0950253B1 (en)

Applications Claiming Priority (3)

Application Number Priority Date Filing Date Title
US77898197A 1997-01-06 1997-01-06
US778981 1997-01-06
PCT/US1997/023439 WO1998031036A1 (en) 1997-01-06 1997-12-17 Relay magnet retention apparatus

Publications (2)

Publication Number Publication Date
EP0950253A1 true EP0950253A1 (en) 1999-10-20
EP0950253B1 EP0950253B1 (en) 2001-11-21

Family

ID=25114942

Family Applications (1)

Application Number Title Priority Date Filing Date
EP97952536A Expired - Lifetime EP0950253B1 (en) 1997-01-06 1997-12-17 Relay magnet retention apparatus

Country Status (10)

Country Link
EP (1) EP0950253B1 (en)
JP (1) JP2001508232A (en)
KR (1) KR20000069919A (en)
CN (1) CN1123901C (en)
BR (1) BR9714520A (en)
CA (1) CA2276751A1 (en)
DE (1) DE69709786T2 (en)
ES (1) ES2167024T3 (en)
TW (1) TW442810B (en)
WO (1) WO1998031036A1 (en)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP3211653A1 (en) * 2016-02-23 2017-08-30 Tyco Electronics Componentes Electromecanicos Lda Electromagnetic relay for three switching positions

Families Citing this family (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN107833792B (en) * 2017-11-07 2020-03-06 厦门宏发信号电子有限公司 High-voltage-resistant subminiature electromagnetic relay

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Publication number Priority date Publication date Assignee Title
FR2254873A1 (en) * 1973-12-18 1975-07-11 Gp App Electro Mecaniqu Electro-magnetic bistable relay - has vibration damping contact blade and permanent magnet locking relay
SI9300215A (en) * 1992-05-15 1993-12-31 Siemens Ag Contact spring arrangement for a relay for conducting and swiching high currents
DE4309618A1 (en) * 1993-03-24 1994-09-29 Siemens Ag Polarised electromagnetic relay
US5587693A (en) * 1995-08-07 1996-12-24 Siemens Electromechanical Components, Inc. Polarized electromagnetic relay

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
See references of WO9831036A1 *

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP3211653A1 (en) * 2016-02-23 2017-08-30 Tyco Electronics Componentes Electromecanicos Lda Electromagnetic relay for three switching positions

Also Published As

Publication number Publication date
CN1244291A (en) 2000-02-09
JP2001508232A (en) 2001-06-19
EP0950253B1 (en) 2001-11-21
DE69709786D1 (en) 2002-02-21
WO1998031036A1 (en) 1998-07-16
BR9714520A (en) 2000-05-09
DE69709786T2 (en) 2002-06-20
CN1123901C (en) 2003-10-08
CA2276751A1 (en) 1998-07-16
ES2167024T3 (en) 2002-05-01
KR20000069919A (en) 2000-11-25
TW442810B (en) 2001-06-23

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