WO2012072647A1 - Latching device for a circuit breaker - Google Patents

Latching device for a circuit breaker Download PDF

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Publication number
WO2012072647A1
WO2012072647A1 PCT/EP2011/071317 EP2011071317W WO2012072647A1 WO 2012072647 A1 WO2012072647 A1 WO 2012072647A1 EP 2011071317 W EP2011071317 W EP 2011071317W WO 2012072647 A1 WO2012072647 A1 WO 2012072647A1
Authority
WO
WIPO (PCT)
Prior art keywords
toggle
latching device
lever
remote
circuit breaker
Prior art date
Application number
PCT/EP2011/071317
Other languages
French (fr)
Inventor
Volker Heins
Detlef Koch
Gregor Fleitmann
Hans-Jürgen Mader
Wolfgang Kutsche
Original Assignee
Eaton Industries Gmbh
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 Eaton Industries Gmbh filed Critical Eaton Industries Gmbh
Priority to CA2819068A priority Critical patent/CA2819068A1/en
Priority to US13/989,803 priority patent/US9117598B2/en
Priority to EP11788497.3A priority patent/EP2647025B1/en
Priority to CN201180057192.4A priority patent/CN103348435B/en
Publication of WO2012072647A1 publication Critical patent/WO2012072647A1/en

Links

Classifications

    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01HELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
    • H01H5/00Snap-action arrangements, i.e. in which during a single opening operation or a single closing operation energy is first stored and then released to produce or assist the contact movement
    • H01H5/04Energy stored by deformation of elastic members
    • H01H5/06Energy stored by deformation of elastic members by compression or extension of coil springs
    • H01H5/10Energy stored by deformation of elastic members by compression or extension of coil springs one end of spring being fixedly connected to the stationary or movable part of the switch and the other end reacting with a movable or stationary rigid member respectively through pins, cams, toothed or other shaped surfaces
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01HELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
    • H01H1/00Contacts
    • H01H1/50Means for increasing contact pressure, preventing vibration of contacts, holding contacts together after engagement, or biasing contacts to the open position
    • H01H1/52Contacts adapted to act as latches
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01HELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
    • H01H71/00Details of the protective switches or relays covered by groups H01H73/00 - H01H83/00
    • H01H71/10Operating or release mechanisms
    • H01H71/50Manual reset mechanisms which may be also used for manual release
    • H01H71/505Latching devices between operating and release mechanism
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01HELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
    • H01H71/00Details of the protective switches or relays covered by groups H01H73/00 - H01H83/00
    • H01H71/10Operating or release mechanisms
    • H01H71/50Manual reset mechanisms which may be also used for manual release
    • H01H71/56Manual reset mechanisms which may be also used for manual release actuated by rotatable knob or wheel
    • H01H2071/565Manual reset mechanisms which may be also used for manual release actuated by rotatable knob or wheel using a add on unit, e.g. a separate rotary actuator unit, mounted on lever actuated circuit breakers

Definitions

  • the invention relates to a latching device for a circuit breaker. Background of invention
  • Remote-control releases are known to remotely switching a circuit breaker on or off.
  • the known remote-control release is often mounted on a standard circuit breaker and is operative connected with the lever of said circuit breaker.
  • the remote-control release comprising an electrical device which is adapted to move via a mechanical component a toggle of the circuit breaker into the ON- or OFF-position.
  • an operator has to start the electrical device, which could be a motor by closing an electrical contact from the distance.
  • the mechanical component of the known remote-control release comprises a spring- operating storage, wherein the spring-operating storage of the remote-control release is adapted to clamp a spring-operating storage of the latching device such that the toggle of the latching device of the circuit breaker is moved above a breakover point. If the toggle of the latching device is moved above said breakover point, the spring-operating storage of the latching device is released and the contacts of the circuit breaker are moved by the latching device into a close position.
  • the functionality of the spring-operating storage is available in the latching device of the circuit breaker and in the remote-control release.
  • the remote-control release is composed by a lot of components, which causes high assembly costs.
  • the chain of operation comprises complicate mechanical operation sequences so that the probability of a loss in the remote-control release increases.
  • the present invention provides a latching device for a circuit breaker comprising a manual operating toggle which is moveable arranged between an OFF- position and a operation-readiness position.
  • the latching device further comprises a moveable contact and a fixed contact, wherein the moveable contact is adapted to open and close the main circuit of the circuit breaker.
  • the latching device comprises an energy storage mechanism which stores an actuating force of the toggle when the toggle is moved from the OFF-position to the operation-readiness position and is adapted to exert the stored force to the moveable contact to close the main circuit of the circuit breaker.
  • the invention is characterized in that the latching device further comprises a removable retention lever for preventing the movement of the moveable contact into a closing position if the energy storage mechanism exerts the stored force to the moveable contact (52).
  • the advantage is that the circuit breaker can be easily switched on remotely by moving the retention lever and releasing the movable contact. This can be done from far distance by activating e.g. an electrical motor to move the retention lever.
  • the energy storage mechanism comprises a bell-crank lever comprising a first and a second arm which are pivotable linked at a fulcrum pin, wherein the free end of the first arm of the bell-crank lever is pivotable connected to a support lever defining a breakover- point for the toggle and the free end of the second arm of the bell-crank lever is pivotable connected to a movable contact of the circuit breaker and wherein the fulcrum pin is operative connected via a spring with the manual operative toggle such that the spring contracting the bell-crank lever if the toggle is moved above the breakover-point into the operation-readiness position and pushing apart the bell-crank lever if the toggle is moved into the OFF-position.
  • a holding mechanism is provided which holds the toggle in the operation-readiness position.
  • Such holding mechanism can be at least partly provided by the energy storage mechanism such that based on the design of the components of the mechanism the toggle is held in the operation-readiness position once the toggle is moved into this position.
  • the energy storage mechanism is part of a linear actuator which is operative connected to the moveable contact of the circuit breaker.
  • the retention lever having a first end and a second end disposed in a substantial distance from one another, the second end of the retention lever is operative connected with an actor in such a way to enable the first end to release the moveable contact.
  • the retention lever blocks the movement of the fulcrum pin if the toggle is in an operative-readiness position.
  • the first end comprises a detent which is operative connected with a protrusion of the moveable contact if the toggle is in an operation-readiness position.
  • the first end comprises a protrusion which is operative connected with a detent of the moveable contact if the toggle is in an operation-readiness position.
  • the retention lever can be build up very easy without complex mechanical means.
  • the actor can be any kind of electrical or electronic means such as a motor.
  • the actor can also be a bowden cable or any other flexible cable which can pass a mechanical action over a long distance to the retention lever.
  • the first end of the retention lever comprises a hook which is operative connected with a protrusion of the moveable contact if the toggle is in an operation-readiness position.
  • the invention further relates to a remote-control release for a latching device of a circuit breaker according to any of the prescribed embodiments, wherein the remote-control release comprising a rotatable mounted control curve which is operative connected to the toggle of the latching device via a first contact point such that a rotating of the control curve results in a movement of the toggle from an OFF-position to an operation-readiness position.
  • This remote-control release does not contain any spring-operating storage.
  • the remote-control release is easy to assemble and contains less mechanical parts than the remote-control releases in the state of the art.
  • the spring-operating storage is only available in the circuit breaker.
  • the remote-control release comprises a first actuating lever which is rotatable mounted with a first end on a fixed mounting point and which is releasable connected to the toggle of the latching device with a second end, and wherein the first actuating lever comprises the first contact point to the control curve between the first and the second end. It is possible to remove the remote-control release from the circuit breaker. Therefore the circuit breaker can be used without any changes autonomously.
  • a second actuating lever is rotatable mounted on the fixed mounting point in a fix angle to the first actuating lever, wherein the first and the second actuating lever are coupled in a V-shape form, and wherein the second actuating lever comprises a second contact point to the control curve such that a rotating of the control curve results in a movement of the toggle from an operation-readiness position to an OFF-position.
  • the remote-control release is also adapted to switch-OFF a circuit breaker remotely.
  • the remote-control release comprises a further lever arm with a second contact point to the control curve, which is connected to the toggle and wherein a rotating of the control curve results in a movement of the toggle from an operation- readiness position to an OFF-position.
  • This remote-control release is linked to the circuit breaker to build-up a compact circuit breaker with a build-in remote-control release. This circuit breaker can be switched to the operation-readiness position and to the OFF-position by the build-in remote-control release.
  • the rotatable mounted control curve is powered by an electrical motor. Therefore it is easy to remotely controlling the circuit breaker by switching the motor on and off.
  • the invention further relates to a latching system comprising the latching device according to any of the prescribed embodiments and the remote control release according to any of the prescribed embodiments
  • the invention further including a method of operating the latching device of a circuit breaker according to any of the prescribed embodiments, wherein the method comprises the steps of moving the toggle into the operation-readiness state by the remote control release and tripping the actor of the latching device to release the moveable contact of the circuit breaker such that the contacts are closed.
  • Fig. 1 a schematic depiction of an embodiment of a latching device
  • Fig. 2 a schematic depiction of an embodiment of a latching device and a remote-control release
  • Fig. 3 a schematic depiction of an embodiment of a latching device and a further remote- control release.
  • Fig. 1 discloses an inventive latching device of a circuit breaker.
  • the latching device comprises a manual operating toggle 2, which is rotatable mounted at a fixed mounting point.
  • the toggle 2 is manually moveable between an OFF-position and an operation- readiness position.
  • the latching device further comprises a bell-crank lever which is operative connected to the toggle 2.
  • the bell-crank lever comprises two bell-crank lever arms 11, 12 which are moveable connected at a fulcrum pin 13 of the bell-crank lever.
  • the fulcrum pin 13 is linked with the toggle 2 by a spring 3.
  • the free end of the first arm 11 of the bell-crank lever is moveable connected to a support lever 7.
  • the free end of the second arm 12 of the bell-crank lever is moveable connected to a moveable contact 52 of the circuit breaker. If the toggle 2 is in the OFF-position, the spring contracts both arms 11, 12 of the bell- crank lever such that the moveable contact 52 does not touch the fixed contact 51 of the circuit breaker.
  • the extension spring 3 can also be a compression spring. Therefore, the bell-crank lever has to be turned over. If the toggle 2 is moved into the direction of the operation-readiness position, the angle between the first arm 11 of the bell-crank lever and the toggle 2 decreases until the arm 11 is pointing into the same direction as the toggle 2. The toggle has then reached the breakover-point of the bell-crank lever. If the toggle 2 is moved further into the operation-readiness position, the spring 3 pushing apart the arms 11, 12 of the bell-crank lever such that the moveable contact 52 moves into the closing position.
  • a retention lever 4 prevents a further movement of the moveable contact 52 in the direction of the fixed contact 51.
  • the spring 3 expands and the toggle 2 reaches the operation-readiness position.
  • the spring now execute an increased force to the bell-crank lever to push apart both arms 11, 12 for closing the contacts 51, 52.
  • the retention lever 4 is rotatable mounted on a fix mounting point and comprises a first and a second end.
  • the first end of the retention lever 4 comprises a hook 41 which gets stuck with a protrusion 6 of the moveable contact 52 such that the moveable contact 52 is not able to move any further into the direction of the fixed contact 51.
  • an electromagnet is mounted at the first end of the retention lever 4.
  • a piece of metal is mounted at the moveable contact 52 on the opposite side of the electromagnet. To release the retention lever 4, the electromagnet can be switched off to release the metal part.
  • the second end of the retention lever 4 is connected with an actor.
  • the actor can also be a bowden cable or bowden wire or any other flexible cable which can pass a mechanical action over a long distance to the retention lever.
  • the actor can also be an electrical motor which is adapted to move the retention lever 4.
  • Fig. 2 and 3 depict a remote-control release which works together with the prescribed latching device.
  • Fig. 2 depicts a removable remote-control release whereas
  • Fig. 3 depicts an integrated remote-control release.
  • Both embodiments of the inventive remote-control releases comprise a rotatable control curve 84.
  • the rotation of this control curve 84 can be performed by an electrical device, e.g. a motor, which can be controlled from a far distance by electronic means.
  • the control curve 84 is operative connected to the toggle 2 of the circuit breaker such that if the control curve 84 rotates, the toggle 2 moves from the OFF- position into the operation-readiness position by following the curve of the control curve 84. Therefore, a first contact point 86 is established between the control curve 84 and the toggle 2 in Fig. 3.
  • a first actuating lever 82 is in contact via the first contact point 86 with the control curve 84.
  • the first actuating lever 82 is operative connected with the toggle 2 via a reception 81.
  • the remote-control release is therefore removable mounted on the circuit breaker.
  • the first actuating lever 82 is moveable mounted on a fix mounting point 85 and transmits its moving to the toggle 2.
  • a second actuating lever 83 is moveable mounted on the same fixed mounting point 85 such that both actuating levers 82, 83 are coupled in a V- shape form. The angle between both actuating lever 83, 84 is fixed.
  • the second actuating lever 83 provides a second contact point 87 which is in contact with the control curve 84.
  • control curve 84 moves the first actuating lever 82 via the first contact point 86 to move the toggle 2 into the operation-readiness position.
  • the control curve 84 moves the second actuating lever 83 via the second contact point 87 to move the toggle 2 into the OFF-position.
  • the form of the control curve 84 is in a peanut-form and is rotatable mounted out of the geometrical center.
  • Fig. 3 shows a similar method of moving the toggle 2 in both directions. Because in this embodiment, the remote-control release is included in the circuit breaker, a lever arm 88 is connected to the toggle 2 and takes over the function of the second actuating lever 83 of Fig. 2. The second contact point 87 is attached on the free end of the lever arm and is also operative connected to the control curve 84. The first contact point 86 is directly attached to the toggle 2.
  • a holding mechanism is provided for holding the toggle (2) in the operation-readiness position.
  • the holding mechanism can be provided by an adequate lever mechanism, e.g. by adequate design of the bell-crank lever and/or adequate positioning of the pins such that the toggle reaches a stable position when moved into the operation-readiness position (like in Fig. 1)
  • Other possible embodiments include compulsory guides and/or restraints to stabilize and/or hold the toggle (2) in its operation- readiness position.
  • the toggle (2) is held in position operatively by an actuation mechanism e.g. the control curve, if necessary via one or more levers.
  • an actuation mechanism e.g. the control curve

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  • Breakers (AREA)
  • Driving Mechanisms And Operating Circuits Of Arc-Extinguishing High-Tension Switches (AREA)

Abstract

Latching device for a circuit breaker comprising - a manual operating toggle (2) which is moveable arranged between an OFF-position and an operation-readiness position, - a moveable contact (52) and a fixed contact (51), wherein the moveable contact (52) is adapted to open and close the main circuit of the circuit breaker, - an energy storage mechanism which stores an actuating force of the toggle (2) when the toggle (2) is moved from the OFF-position to the operation-readiness position and is adapted to exert the stored force to the moveable contact (52) to close the main circuit of the circuit breaker, characterized in that the latching device further comprises a removable retention lever (4) for preventing the movement of the moveable contact (52) into a closing position if the energy storage mechanism exerts the stored force to the moveable contact (52).

Description

LATCHING DEVICE FOR A CIRCUIT BREAKER
Field of invention
The invention relates to a latching device for a circuit breaker. Background of invention
Remote-control releases are known to remotely switching a circuit breaker on or off. The known remote-control release is often mounted on a standard circuit breaker and is operative connected with the lever of said circuit breaker. The remote-control release comprising an electrical device which is adapted to move via a mechanical component a toggle of the circuit breaker into the ON- or OFF-position. To switch-on a circuit breaker by a remote-control release, an operator has to start the electrical device, which could be a motor by closing an electrical contact from the distance.
The mechanical component of the known remote-control release comprises a spring- operating storage, wherein the spring-operating storage of the remote-control release is adapted to clamp a spring-operating storage of the latching device such that the toggle of the latching device of the circuit breaker is moved above a breakover point. If the toggle of the latching device is moved above said breakover point, the spring-operating storage of the latching device is released and the contacts of the circuit breaker are moved by the latching device into a close position.
The functionality of the spring-operating storage is available in the latching device of the circuit breaker and in the remote-control release. The remote-control release is composed by a lot of components, which causes high assembly costs. The chain of operation comprises complicate mechanical operation sequences so that the probability of a loss in the remote-control release increases.
Summary of invention It is therefore the object of the invention to simplify the operation of a circuit breaker by a remote-control release. This object is achieved according to the invention essentially by a latching device according to the features of claim 1, while the subordinate claims 2 to 9 characterize particularly advantageous refinements of the latching device. The object is further achieved by a method according to claim 10.
In an embodiment the present invention provides a latching device for a circuit breaker comprising a manual operating toggle which is moveable arranged between an OFF- position and a operation-readiness position. The latching device further comprises a moveable contact and a fixed contact, wherein the moveable contact is adapted to open and close the main circuit of the circuit breaker. Further the latching device comprises an energy storage mechanism which stores an actuating force of the toggle when the toggle is moved from the OFF-position to the operation-readiness position and is adapted to exert the stored force to the moveable contact to close the main circuit of the circuit breaker. The invention is characterized in that the latching device further comprises a removable retention lever for preventing the movement of the moveable contact into a closing position if the energy storage mechanism exerts the stored force to the moveable contact (52). The advantage is that the circuit breaker can be easily switched on remotely by moving the retention lever and releasing the movable contact. This can be done from far distance by activating e.g. an electrical motor to move the retention lever.
Further the energy storage mechanism comprises a bell-crank lever comprising a first and a second arm which are pivotable linked at a fulcrum pin, wherein the free end of the first arm of the bell-crank lever is pivotable connected to a support lever defining a breakover- point for the toggle and the free end of the second arm of the bell-crank lever is pivotable connected to a movable contact of the circuit breaker and wherein the fulcrum pin is operative connected via a spring with the manual operative toggle such that the spring contracting the bell-crank lever if the toggle is moved above the breakover-point into the operation-readiness position and pushing apart the bell-crank lever if the toggle is moved into the OFF-position. According to a an embodiment of the invention a holding mechanism is provided which holds the toggle in the operation-readiness position.
Such holding mechanism can be at least partly provided by the energy storage mechanism such that based on the design of the components of the mechanism the toggle is held in the operation-readiness position once the toggle is moved into this position.
In a further embodiment, the energy storage mechanism is part of a linear actuator which is operative connected to the moveable contact of the circuit breaker.
In a further embodiment the retention lever having a first end and a second end disposed in a substantial distance from one another, the second end of the retention lever is operative connected with an actor in such a way to enable the first end to release the moveable contact. In a further embodiment the retention lever blocks the movement of the fulcrum pin if the toggle is in an operative-readiness position. In a further embodiment, the first end comprises a detent which is operative connected with a protrusion of the moveable contact if the toggle is in an operation-readiness position. In a further embodiment, the first end comprises a protrusion which is operative connected with a detent of the moveable contact if the toggle is in an operation-readiness position. The retention lever can be build up very easy without complex mechanical means. Therefore it is cheap and easy to handle. The actor can be any kind of electrical or electronic means such as a motor. The actor can also be a bowden cable or any other flexible cable which can pass a mechanical action over a long distance to the retention lever. Advantageously, the first end of the retention lever comprises a hook which is operative connected with a protrusion of the moveable contact if the toggle is in an operation-readiness position.
The invention further relates to a remote-control release for a latching device of a circuit breaker according to any of the prescribed embodiments, wherein the remote-control release comprising a rotatable mounted control curve which is operative connected to the toggle of the latching device via a first contact point such that a rotating of the control curve results in a movement of the toggle from an OFF-position to an operation-readiness position. This remote-control release does not contain any spring-operating storage.
Therefore the remote-control release is easy to assemble and contains less mechanical parts than the remote-control releases in the state of the art. The spring-operating storage is only available in the circuit breaker.
In a further embodiment, the remote-control release comprises a first actuating lever which is rotatable mounted with a first end on a fixed mounting point and which is releasable connected to the toggle of the latching device with a second end, and wherein the first actuating lever comprises the first contact point to the control curve between the first and the second end. It is possible to remove the remote-control release from the circuit breaker. Therefore the circuit breaker can be used without any changes autonomously.
In a further embodiment of the removable remote-control release, a second actuating lever is rotatable mounted on the fixed mounting point in a fix angle to the first actuating lever, wherein the first and the second actuating lever are coupled in a V-shape form, and wherein the second actuating lever comprises a second contact point to the control curve such that a rotating of the control curve results in a movement of the toggle from an operation-readiness position to an OFF-position. In this advantageously embodiment the remote-control release is also adapted to switch-OFF a circuit breaker remotely.
In a further embodiment, the remote-control release comprises a further lever arm with a second contact point to the control curve, which is connected to the toggle and wherein a rotating of the control curve results in a movement of the toggle from an operation- readiness position to an OFF-position. This remote-control release is linked to the circuit breaker to build-up a compact circuit breaker with a build-in remote-control release. This circuit breaker can be switched to the operation-readiness position and to the OFF-position by the build-in remote-control release.
Advantageously, the rotatable mounted control curve is powered by an electrical motor. Therefore it is easy to remotely controlling the circuit breaker by switching the motor on and off.
The invention further relates to a latching system comprising the latching device according to any of the prescribed embodiments and the remote control release according to any of the prescribed embodiments The invention further including a method of operating the latching device of a circuit breaker according to any of the prescribed embodiments, wherein the method comprises the steps of moving the toggle into the operation-readiness state by the remote control release and tripping the actor of the latching device to release the moveable contact of the circuit breaker such that the contacts are closed.
Description of invention
Additional details and advantages can be gleaned from the embodiments below explained on the basis of the figures. The following is shown:
Fig. 1 a schematic depiction of an embodiment of a latching device;
Fig. 2 a schematic depiction of an embodiment of a latching device and a remote-control release;
Fig. 3 a schematic depiction of an embodiment of a latching device and a further remote- control release.
Fig. 1 discloses an inventive latching device of a circuit breaker. The latching device comprises a manual operating toggle 2, which is rotatable mounted at a fixed mounting point. The toggle 2 is manually moveable between an OFF-position and an operation- readiness position. The latching device further comprises a bell-crank lever which is operative connected to the toggle 2. The bell-crank lever comprises two bell-crank lever arms 11, 12 which are moveable connected at a fulcrum pin 13 of the bell-crank lever. The fulcrum pin 13 is linked with the toggle 2 by a spring 3. The free end of the first arm 11 of the bell-crank lever is moveable connected to a support lever 7. The free end of the second arm 12 of the bell-crank lever is moveable connected to a moveable contact 52 of the circuit breaker. If the toggle 2 is in the OFF-position, the spring contracts both arms 11, 12 of the bell- crank lever such that the moveable contact 52 does not touch the fixed contact 51 of the circuit breaker. The extension spring 3 can also be a compression spring. Therefore, the bell-crank lever has to be turned over. If the toggle 2 is moved into the direction of the operation-readiness position, the angle between the first arm 11 of the bell-crank lever and the toggle 2 decreases until the arm 11 is pointing into the same direction as the toggle 2. The toggle has then reached the breakover-point of the bell-crank lever. If the toggle 2 is moved further into the operation-readiness position, the spring 3 pushing apart the arms 11, 12 of the bell-crank lever such that the moveable contact 52 moves into the closing position.
Before the moveable contact 52 get in contact with the fixed contact 51, a retention lever 4 prevents a further movement of the moveable contact 52 in the direction of the fixed contact 51. The spring 3 expands and the toggle 2 reaches the operation-readiness position. The spring now execute an increased force to the bell-crank lever to push apart both arms 11, 12 for closing the contacts 51, 52.
The retention lever 4 is rotatable mounted on a fix mounting point and comprises a first and a second end. The first end of the retention lever 4 comprises a hook 41 which gets stuck with a protrusion 6 of the moveable contact 52 such that the moveable contact 52 is not able to move any further into the direction of the fixed contact 51. It is also possible that an electromagnet is mounted at the first end of the retention lever 4. A piece of metal is mounted at the moveable contact 52 on the opposite side of the electromagnet. To release the retention lever 4, the electromagnet can be switched off to release the metal part.
The second end of the retention lever 4 is connected with an actor. The actor can also be a bowden cable or bowden wire or any other flexible cable which can pass a mechanical action over a long distance to the retention lever. The actor can also be an electrical motor which is adapted to move the retention lever 4.
Fig. 2 and 3 depict a remote-control release which works together with the prescribed latching device. Fig. 2 depicts a removable remote-control release whereas Fig. 3 depicts an integrated remote-control release. Both embodiments of the inventive remote-control releases comprise a rotatable control curve 84. The rotation of this control curve 84 can be performed by an electrical device, e.g. a motor, which can be controlled from a far distance by electronic means. The control curve 84 is operative connected to the toggle 2 of the circuit breaker such that if the control curve 84 rotates, the toggle 2 moves from the OFF- position into the operation-readiness position by following the curve of the control curve 84. Therefore, a first contact point 86 is established between the control curve 84 and the toggle 2 in Fig. 3.
In Fig. 2, a first actuating lever 82 is in contact via the first contact point 86 with the control curve 84. The first actuating lever 82 is operative connected with the toggle 2 via a reception 81. The remote-control release is therefore removable mounted on the circuit breaker. The first actuating lever 82 is moveable mounted on a fix mounting point 85 and transmits its moving to the toggle 2. A second actuating lever 83 is moveable mounted on the same fixed mounting point 85 such that both actuating levers 82, 83 are coupled in a V- shape form. The angle between both actuating lever 83, 84 is fixed. The second actuating lever 83 provides a second contact point 87 which is in contact with the control curve 84. If the control curve 84 rotates in a specified direction, the second actuating lever 83 moves. Because both actuating lever 82, 83 are connected together, the first actuating lever 82 also moves the toggle 2 of the circuit breaker into the OFF-position.
In a summary, the control curve 84 moves the first actuating lever 82 via the first contact point 86 to move the toggle 2 into the operation-readiness position. The control curve 84 moves the second actuating lever 83 via the second contact point 87 to move the toggle 2 into the OFF-position. The form of the control curve 84 is in a peanut-form and is rotatable mounted out of the geometrical center.
Fig. 3 shows a similar method of moving the toggle 2 in both directions. Because in this embodiment, the remote-control release is included in the circuit breaker, a lever arm 88 is connected to the toggle 2 and takes over the function of the second actuating lever 83 of Fig. 2. The second contact point 87 is attached on the free end of the lever arm and is also operative connected to the control curve 84. The first contact point 86 is directly attached to the toggle 2.
According to a preferred embodiment a holding mechanism is provided for holding the toggle (2) in the operation-readiness position. The holding mechanism can be provided by an adequate lever mechanism, e.g. by adequate design of the bell-crank lever and/or adequate positioning of the pins such that the toggle reaches a stable position when moved into the operation-readiness position (like in Fig. 1) Other possible embodiments include compulsory guides and/or restraints to stabilize and/or hold the toggle (2) in its operation- readiness position. According to a preferred embodiment the toggle (2) is held in position operatively by an actuation mechanism e.g. the control curve, if necessary via one or more levers. Such embodiments are exemplary shown in Fig. 2 and Fig. 3.
Reference numeral
1 1 first arm of a bell-crank lever
12 second arm of a bell-crank lever
13 fulcrum pin of a bell-crank lever
2 manual operating toggle
spring
4 retention lever
41 hook
51 fixed contact
52 moveable contact
6 protrusion
7 support lever
81 reception
82 first actuating lever
83 second actuating lever
84 control curve
85 mounting point
86 first contact point
87 second contact point
88 lever arm

Claims

Claims
1. Latching device for a circuit breaker comprising
- a manual operating toggle (2) which is moveable arranged between an OFF- position and an operation-readiness position,
- a moveable contact (52) and a fixed contact (51), wherein the moveable contact (52) is adapted to open and close the main circuit of the circuit breaker,
- an energy storage mechanism which stores an actuating force of the toggle (2) when the toggle (2) is moved from the OFF-position to the operation-readiness position and is adapted to exert the stored force to the moveable contact (52) to close the main circuit of the circuit breaker,
characterized in that the latching device further comprises a removable retention lever (4) for preventing the movement of the moveable contact (52) into a closing position if the energy storage mechanism exerts the stored force to the moveable contact (52) and that a holding mechanism is provided which holds the toggle (2) in the operation-readiness position.
2. Latching device according to claim 1, wherein the energy storage mechanism
comprises a bell-crank lever comprising a first (11) and a second arm (12) which are pivotable linked at a fulcrum pin (13), wherein the free end of the first arm (11) of the bell-crank lever is pivotable connected to a support lever (7) defining a breakover-point for the toggle (2) and the free end of the second arm (12) of the bell- crank lever is pivotable connected to a movable contact (52) of the circuit breaker, and
wherein the fulcrum pin (13) is operative connected via a spring (3) with the manual operative toggle (2) such that the spring (3) contracting the bell-crank lever if the toggle (2) is moved above the breakover-point into the operation-readiness position and pushing apart the bell-crank lever if the toggle (2) is moved into the OFF- position.
3. Latching device according to claim 1, wherein the energy storage mechanism is part of a linear actuator which is operative connected to the moveable contact (52) of the circuit breaker.
4. Latching device according to any of the claims 1 to 3, wherein the retention lever (4) having a first end and a second end disposed in a substantial distance from one another, the second end of the retention lever (4) is operative connected with an actor in such a way to enable the first end to release the moveable contact (52).
5. Latching device according to claim 4, wherein the first end comprises a hook (41) which is operative connected with a protrusion (6) of the moveable contact (52) if the toggle (2) is in an operation-readiness position.
6. Latching device according to claim 4, wherein the retention lever (4) blocks the movement of the fulcrum pin (13) or the second arm of a bell-crank lever (12) if the toggle (2) is in an operative-readiness position.
7. Latching device according to claim 4, wherein the first end comprises a detent which is operative connected with a protrusion (6) of the moveable contact (52) if the toggle (2) is in an operation-readiness position.
8. Latching device according to claim 4, wherein the first end comprises a protrusion which is operative connected with a detent of the moveable contact (52) if the toggle (2) is in an operation-readiness position.
9. Remote-control release for a latching device according to any of the claims 1 to 8, wherein the remote-control release comprises a rotatable mounted control curve (84) which is operative connected to the toggle (2) of the latching device via a first contact point (86) such that a rotating of the control curve (84) results in a movement of the toggle (2) from an OFF-position to an operation-readiness position.
10. Remote-control release according to claim 9, wherein the remote-control release further comprises a first actuating lever (82) which is rotatable mounted with a first end on a fixed mounting point (85) and which is releasable connected to the toggle (2) of the latching device with a second end, and wherein the first actuating lever (82) comprises the first contact point (86) to the control curve (84) between the first and the second end.
11. Remote-control release according to claim 10, wherein a second actuating lever (83) is rotatable mounted on the fixed mounting point (85) in a fix angle to the first actuating lever (82), wherein the first and the second actuating levers (82, 83) are coupled in a V-shape form, and wherein the second actuating lever (83) comprises a second contact point (87) to the control curve (84) such that a rotating of the control curve (84) results in a movement of the toggle (2) from an operation-readiness position to an OFF-position.
12. Remote-control release according to claim 9, comprising a further lever arm (88) with a second contact point (87) to the control curve (84), which is connected to the toggle (2) and wherein a rotating of the control curve (84) results in a movement of the toggle (2) from an operation-readiness position to an OFF-position.
13. Remote-control release according to any of the claims 9-12, wherein the rotatable mounted control curve (84) is powered by an electrical motor.
14. A latching system comprising a latching device according to any of the claims 1 to 7 and a remote-control release according to any of the claims 9 to 13.
15. Method of operating the latching system according to claim 14, wherein the method comprises the steps of
- moving the toggle (2) into the operation-readiness state by the remote-control release,
- tripping the actor of the latching device to release the moveable contact (52) of the circuit breaker such that the contacts (51, 52) are closed.
PCT/EP2011/071317 2010-11-29 2011-11-29 Latching device for a circuit breaker WO2012072647A1 (en)

Priority Applications (4)

Application Number Priority Date Filing Date Title
CA2819068A CA2819068A1 (en) 2010-11-29 2011-11-29 Latching device for a circuit breaker
US13/989,803 US9117598B2 (en) 2010-11-29 2011-11-29 Latching device for a circuit breaker
EP11788497.3A EP2647025B1 (en) 2010-11-29 2011-11-29 Latching device for a circuit breaker
CN201180057192.4A CN103348435B (en) 2010-11-29 2011-11-29 For the locking device of circuit breaker

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
EP10193011A EP2458612A1 (en) 2010-11-29 2010-11-29 Latching device for a circuit breaker
EP10193011.3 2010-11-29

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WO2012072647A1 true WO2012072647A1 (en) 2012-06-07

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EP (2) EP2458612A1 (en)
CN (1) CN103348435B (en)
CA (1) CA2819068A1 (en)
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FR3023651B1 (en) * 2014-07-11 2017-10-20 Schneider Electric Ind Sas ELECTRIC CIRCUIT BREAKER INCLUDING A MECHANICAL DEVICE FOR LOCKING A MOBILE BRIDGE
CN109411247A (en) * 2017-08-18 2019-03-01 日立电梯(中国)有限公司 A kind of switch resilience-proof device

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Publication number Publication date
EP2458612A1 (en) 2012-05-30
US20130306453A1 (en) 2013-11-21
CA2819068A1 (en) 2012-06-07
EP2647025A1 (en) 2013-10-09
CN103348435A (en) 2013-10-09
CN103348435B (en) 2016-01-13
EP2647025B1 (en) 2018-07-11
US9117598B2 (en) 2015-08-25

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