CN114613624B - Three-working-position change-over switch device and automatic change-over switch electric appliance - Google Patents
Three-working-position change-over switch device and automatic change-over switch electric appliance Download PDFInfo
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- CN114613624B CN114613624B CN202210130557.1A CN202210130557A CN114613624B CN 114613624 B CN114613624 B CN 114613624B CN 202210130557 A CN202210130557 A CN 202210130557A CN 114613624 B CN114613624 B CN 114613624B
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Classifications
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01H—ELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
- H01H9/00—Details of switching devices, not covered by groups H01H1/00 - H01H7/00
- H01H9/20—Interlocking, locking, or latching mechanisms
- H01H9/24—Interlocking, locking, or latching mechanisms for interlocking two or more parts of the mechanism for operating contacts
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01H—ELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
- H01H1/00—Contacts
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01H—ELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
- H01H3/00—Mechanisms for operating contacts
- H01H3/32—Driving mechanisms, i.e. for transmitting driving force to the contacts
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y04—INFORMATION OR COMMUNICATION TECHNOLOGIES HAVING AN IMPACT ON OTHER TECHNOLOGY AREAS
- Y04S—SYSTEMS INTEGRATING TECHNOLOGIES RELATED TO POWER NETWORK OPERATION, COMMUNICATION OR INFORMATION TECHNOLOGIES FOR IMPROVING THE ELECTRICAL POWER GENERATION, TRANSMISSION, DISTRIBUTION, MANAGEMENT OR USAGE, i.e. SMART GRIDS
- Y04S20/00—Management or operation of end-user stationary applications or the last stages of power distribution; Controlling, monitoring or operating thereof
- Y04S20/20—End-user application control systems
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Abstract
The invention relates to a three-working-position switching device and an automatic transfer switching device, wherein the three-working-position switching device comprises an insulating shell, a common power contact assembly, a standby power contact assembly, a load contact assembly, a moving contact assembly and a rocker arm, wherein the common power contact assembly, the standby power contact assembly, the load contact assembly, the moving contact assembly and the rocker arm are respectively arranged on the insulating shell; the movable contact assembly comprises a support, a movable contact conducting bar arranged at the top of the support, a first elastic piece arranged in the support, a first rotating shaft fixed in the insulating shell and penetrating the support along a first direction, and a U-shaped connecting rod connected with the support and the rocker arm respectively; the first elastic part structure extends out of the support and is connected with the movable contact conducting bar; after the movable contact conducting bar abuts against the corresponding contact assembly, the first elastic assembly generates elastic potential energy for enabling the movable contact conducting bar to abut against the corresponding contact assembly; the movable contact conducting bars can be stably and reliably abutted against the corresponding contact assemblies; the whole structure is relatively simple, the reliability is high, the cost is low, the volume is small, and the three working positions can be switched.
Description
Technical Field
The invention relates to the technical field of automatic transfer switching devices, in particular to a three-working-position transfer switching device and an automatic transfer switching device.
Background
The transfer switch electrical appliance is a common low-voltage electrical appliance, is commonly used in important power distribution occasions such as airports, hospitals and data centers, is used for switching two paths of power supplies, and ensures that the power supply is quickly switched to a standby power supply when the common power supply fails in the power supply process, so that the normal power supply of a load end is ensured.
Along with the daily and monthly variation of economic and social development and technical progress, the performance and reliability of a modern power supply and distribution system are required to meet the requirement of increasingly diversified load types, and the change-over switch electrical appliance is used as a power distribution electrical appliance applied to a power supply end of a key occasion, the lower end load condition is complex and various, and when the power supply is switched, the main circuit can inevitably generate abnormal conditions such as impact current, abnormal voltage, phase difference and the like.
The related art is also provided with a three-station transfer switch electric appliance which comprises three working positions, including a common power supply closing position, a standby power supply closing position and a double-dividing position (two power supply disconnecting positions); when the power supply is switched in normal operation, the power supply can stay for a period of time at the double-branch position, so that impact of impact current on a main circuit load and a transfer switch electric appliance is avoided, and under certain specific conditions, such as a manual working mode, the three-station transfer switch electric appliance is arranged at the two-way power supply disconnection position and locked, isolation maintenance can be realized on a lower-end circuit, and personal safety is ensured. Meanwhile, the three-station transfer switch electrical appliance can also realize the fire emergency stop function, and can receive instructions to rapidly cut off two paths of power supplies in a fire place when extreme abnormal conditions such as fire disaster occur in the important occasion, so that fire safety is ensured.
In order to realize the three working positions, the three-station transfer switch electrical appliance in the prior art is provided with two groups of contacts in a transfer switch device, which are respectively responsible for being abutted against a common power contact assembly and a standby power contact assembly, and meanwhile, a control and operation system is required to correspondingly arrange two groups of square shafts and transmission parts so as to drive the moving contacts to rotate, so that the cost is relatively high, the structure is complex and the volume is large.
Disclosure of Invention
The invention aims to solve the technical problems that two groups of contacts and a contact transmission device are needed in a switching device in the related art, the cost is relatively high, the structure is complex and the size is large, and the invention provides a three-working-position switching device with high cost performance and an automatic transfer switching device.
The technical scheme adopted for solving the technical problems is as follows: the three-working-position switching switch device comprises an insulating shell, a common power contact assembly, a standby power contact assembly, a load contact assembly, a moving contact assembly and a rocker arm, wherein the common power contact assembly, the standby power contact assembly, the load contact assembly, the moving contact assembly and the rocker arm are respectively arranged on the insulating shell;
The movable contact assembly comprises a support, a movable contact conducting bar arranged at the top of the support, a first elastic piece arranged in the support, a first rotating shaft which is fixed in the insulating shell and penetrates through the support along a first direction, and a U-shaped connecting rod which is respectively connected with the support and the rocker arm;
The front part of the movable contact conducting bar is arranged between the common power contact assembly and the standby power contact assembly; the rocker arm drives the support and the movable contact conducting bar to rotate by taking the first rotating shaft as a base point; the movable contact conducting bar is configured to abut against the common power contact component or the standby power contact component or neither of the common power contact component and the standby power contact component according to the rotation direction of the rocker arm;
The first elastic piece part structure extends out of the support and is connected with the movable contact conducting bar; after the movable contact conducting bar is abutted against the corresponding contact component, the front end or the tail end of the movable contact conducting bar is tilted relative to the support, and acts on the first elastic component to deform the movable contact conducting bar, and the first elastic component generates elastic potential energy to enable the movable contact conducting bar to be abutted against the corresponding contact component.
Preferably, the first elastic piece comprises an elastic main body capable of deforming and a lifting part used for being connected with the movable contact conducting bar;
The elastic main body comprises a movable part and a contact part, wherein the contact part is used for abutting against the inner wall of the support, two ends of the contact part are close and bent downwards to reversely extend to form the movable part, and two free ends of the movable part are bent upwards vertically to form the lifting part;
The movable part is close to the contact part under the action of the lifting part and generates the elastic potential energy.
Preferably, the top wall of the support is provided with a first notch part for the lifting part to extend out to be connected with the movable contact conducting bar;
The first notch part is transversely cut on the top wall of the support and extends along two side walls of the support in the first direction to form a U-shaped notch; the part of the structure of the lifting part is arranged at the position of the first notch part on the two side walls of the support.
The invention also constructs an automatic transfer switching device, which comprises a contact system and a control and operation system for controlling the contact system to switch when the power supply fails; the contact system comprises a plurality of change-over switch devices; the switching device is characterized by adopting the switching device; the control and operating system is provided with a first transmission shaft which extends into the change-over switch device to be fixedly connected with the rocker arm of the change-over switch device.
Preferably, the control and operation system comprises an operation shell, a first side plate, a switching-on mechanism, a reversing mechanism and a circuit mechanism, wherein the first side plate is respectively arranged in the operation shell, the switching-on mechanism is used for driving the contact system to be switched to a switching-on position, the reversing mechanism is used for switching the contact system to a common power switching-on position or a standby power switching-on position, and the circuit mechanism is respectively electrically connected with the switching-on mechanism and the reversing mechanism to control the switching-on mechanism and the reversing mechanism to work;
The first side plate is provided with a Y-shaped opening; the switching-on mechanism part structure passes through the Y-shaped opening to be connected with the first transmission shaft and can displace in the Y-shaped opening to drive the first transmission shaft to rotate; the reversing mechanism is rotatably connected to the adjacent side position of the first side plate in the Y-shaped opening, and the adjacent side position changes the displacement track of the switching-on mechanism part structure in the Y-shaped opening under the control of the circuit mechanism.
Preferably, the closing mechanism comprises a first abutting component arranged on one side of the first side plate, a first electromagnetic driving component arranged on the other side of the first side plate, an L-shaped movable component and a first resetting component connected with the L-shaped movable component;
The L-shaped movable assembly is provided with a second rotating shaft, one end of which is vertically fixed on the first side plate; the first electromagnetic driving assembly is provided with a first cross rod which extends to and is fixedly connected with the L-shaped movable assembly;
one end of the first abutting component is connected with the first transmission shaft, and the other end of the first abutting component is provided with a first connecting rod which penetrates through the Y-shaped opening and is connected with the L-shaped movable component; the first connecting rod is arranged in parallel with the second rotating shaft;
The first cross rod is driven by the first electromagnetic driving assembly to axially displace, the L-shaped movable assembly is pulled to rotate to a closing position by taking the second rotating shaft as a base point, or the L-shaped movable assembly is restored to an original position under the action of the first resetting assembly.
Preferably, the Y-shaped opening is inverted Y-shaped; the Y-shaped opening comprises a high-level hole, a first extending hole and a second extending hole, wherein the first extending hole and the second extending hole are downwards branched from the high-level hole.
Preferably, the reversing mechanism comprises a reversing piece, a third rotating shaft, a second reset component and a second electromagnetic driving component which is electrically connected with the circuit mechanism;
The third rotating shaft penetrates through the reversing piece and is fixedly connected to the first side plate, and the reversing piece can rotate by taking the third rotating shaft as a base point;
The reversing piece comprises a first adsorption part and a pointing part which are respectively arranged at two sides of the third rotating shaft in the third direction; the end part of the pointing part points to the Y-shaped opening, and the end part can be projected on the Y-shaped opening; the first adsorption part is arranged at the position adjacent to the second electromagnetic driving assembly and is connected with the second reset assembly;
the first adsorption part drives the pointing part to point to one of the first extending hole and the second extending hole under the action of the second electromagnetic driving component, or drives the pointing part to resume pointing to the other of the first extending hole and the second extending hole under the action of the second resetting component.
Preferably, the first abutting component comprises the first connecting rod, a first rotating piece fixedly connected with the first transmission shaft and a first transverse plate respectively connected with the first connecting rod and the first rotating piece to play a role in transmission;
The first transverse plate and the first rotating piece are arranged in parallel with the first side plate; the first transmission shaft penetrates through the first rotating piece and is rotatably connected with the first side plate.
Preferably, the control and operating system further comprises a manual operating mechanism; the manual operation mechanism comprises a first pressing component for manually controlling the reversing mechanism and a poking component for manually controlling the switching-on mechanism.
The implementation of the invention has the following beneficial effects: the invention adopts a single contact group and a single transmission shaft for transmission, has relatively simple structure, low cost and small volume, can realize the switching of three working positions, meets the actual application requirements, has high reliability and cost performance, and effectively reduces the manufacturing cost and the whole volume of the switch;
Meanwhile, by utilizing the position change of the movable contact conductor bar relative to the support in different closing positions, elastic potential energy for enabling the movable contact conductor bar to be abutted against the corresponding contact assembly is generated for the first elastic piece, and the movable contact conductor bar can be stably and reliably abutted against the corresponding contact assembly; the short-circuit fault current resistance and the short-circuit current resistance can be improved.
Drawings
The invention will be further described with reference to the accompanying drawings and examples, in which:
Fig. 1 is a schematic diagram of an external structure of an automatic transfer switching device of the present invention;
FIG. 2 is a schematic view of the exploded structure of FIG. 1;
FIG. 3 is a schematic view of the internal structure of the three-position switch device of the present invention;
FIG. 4 is an exploded view of the moving contact assembly of the three-position switch device of the present invention;
FIG. 5 is a cross-sectional view of the moving contact assembly of the three-position switch device of the present invention;
FIG. 6 is a schematic view of the internal structure of the three-position switch device of the present invention in the normal power on position;
FIG. 7 is a schematic view of the internal structure of the three-position switch device of the present invention in the standby power switch-on position;
FIG. 8 is a schematic diagram of the internal structure of the control and operating system in the automatic transfer switching device of the present invention;
Fig. 9 is a cross-sectional view of the control and operating system in a first direction in the automatic transfer switching device of the present invention;
FIG. 10 is a schematic diagram of the switching mechanism and the reversing mechanism in the automatic transfer switching device of the present invention;
FIG. 11 is a schematic diagram of a closing mechanism in the automatic transfer switching device of the present invention;
FIG. 12 is a schematic view of the structure of the first abutment assembly and the first side plate when the automatic transfer switch is in the double-split position;
Fig. 13 is a schematic structural view of the first abutting component and the first side plate when the automatic transfer switch device is at a common power supply closing position;
Fig. 14 is a schematic structural view of the first abutting component and the first side plate when the automatic transfer switching device is at the standby power switch-on position;
Fig. 15 is a schematic structural view of a reversing mechanism in the automatic transfer switching device of the present invention;
FIG. 16 is a schematic view of the reversing mechanism and the first side plate of the automatic transfer switch of the present invention in the double-split position;
Fig. 17 is a schematic structural view of the reversing mechanism and the first side plate when the automatic transfer switching device is in the standby power supply switching-on position.
Detailed Description
For a clearer understanding of technical features, objects and effects of the present invention, a detailed description of embodiments of the present invention will be made with reference to the accompanying drawings. In the following description, it should be understood that the directions or positional relationships indicated by "front", "rear", "upper", "lower", "left", "right", "longitudinal", "transverse", "vertical", "horizontal", "top", "bottom", "inner", "outer", "head", "tail", etc. are configured and operated in specific directions based on the directions or positional relationships shown in the drawings, are merely for convenience of describing the present invention, and do not indicate that the apparatus or element to be referred to must have specific directions, and thus should not be construed as limiting the present invention.
It should also be noted that unless explicitly stated or limited otherwise, terms such as "mounted," "connected," "secured," "disposed," and the like are to be construed broadly and may be, for example, fixedly connected, detachably connected, or integrally formed; can be mechanically or electrically connected; can be directly connected or indirectly connected through an intermediate medium, and can be communicated with the inside of two elements or the interaction relationship of the two elements. When an element is referred to as being "on" or "under" another element, it can be "directly" or "indirectly" on the other element or one or more intervening elements may also be present. The terms "first," "second," "third," and the like are used merely for convenience in describing the present invention and are not to be construed as indicating or implying a relative importance or implicitly indicating the number of technical features indicated, whereby features defining "first," "second," "third," etc. may explicitly or implicitly include one or more such features. The specific meaning of the above terms in the present invention can be understood by those of ordinary skill in the art according to the specific circumstances.
In the following description, for purposes of explanation and not limitation, specific details are set forth such as the particular system architecture, techniques, etc., in order to provide a thorough understanding of the embodiments of the present invention. It will be apparent, however, to one skilled in the art that the present invention may be practiced in other embodiments that depart from these specific details. In other instances, detailed descriptions of well-known systems, devices, circuits, and methods are omitted so as not to obscure the description of the present invention with unnecessary detail.
It should be noted that, the stock power source is a common power source or a short for standby power source, and the switching of the stock power source refers to the switching of the common power source to the standby power source, or the short for switching the standby power source to the common power source, and the technical scheme is briefly described below along with the short and short for the above description.
As shown in fig. 1-17, the invention shows an automatic transfer switching device which has relatively simple structure, low cost and small volume, adopts a single contact group and a single transmission shaft for transmission, can realize three working positions of a common power supply closing position, a standby power supply closing position and a double-split position, meets the requirements of practical application, and has high reliability. Meanwhile, compared with the related technology, the contact switching time is greatly shortened, the performance is reliable, the manufacturing cost is effectively reduced, the whole size of the switch is reduced, and the requirements of the modern power supply system on the power supply occasion for rapidly switching the power supply are met.
The automatic transfer switching device comprises a contact system and a control and operation system 200; the contact system is used for connecting a stock power supply and a load, and the control and operation system 200 is connected with the contact system to automatically switch to the standby power supply when the standby power supply fails or to the common power supply when the standby power supply fails, so that functions such as 'middle stay', 'fire-fighting linkage' can be realized, namely, the control and operation system is switched to a position which is not contacted with the common power supply and the standby power supply.
Further, the contact system includes a switching device formed by multi-pole splicing, and the switching device is connected with the control and operation system 200 through a long screw to form an automatic transfer switching device.
As shown in fig. 1-7, the single transfer switch device includes an insulating housing 102, a common power contact assembly 103, a backup power contact assembly 104, a load contact assembly 105, an arc extinguishing chamber 107, a moving contact assembly 101, and a rocker arm 106, each disposed within the insulating housing 102.
The common power contact assembly 103 is arranged above the standby power contact assembly 104; and a space for the part of the mechanism of the movable contact assembly 101 to extend into and rotate is reserved between the two; the movable contact assembly 101 abuts against the common power contact assembly 103 or the standby power contact assembly 104 according to the rotation direction of the rocker arm 106 so as to access the standby power. It should be noted that the conventional power contact assembly 103, the backup power contact assembly 104, and the load contact assembly 105 may refer to the prior art, and will not be further described herein.
The rocker arm 106 is connected to the control and operating system 200, specifically, a first transmission shaft 209 in the control and operating system 200 extends into the switching device to be fixed in the rocker arm 106 in a penetrating manner, so that the rocker arm 106 rotates along with the first transmission shaft 209.
The movable contact assembly 101 is respectively connected with the rocker arm 106 and the load contact assembly 105, and can rotate in the insulating shell 102 along with the rocker arm 106; the rocker arm 106 can be abutted against the common power contact assembly 103 or the standby power contact assembly 104 according to the rotation direction of the rocker arm 106, so that the switching-on of the standby power supply is realized;
The arc extinguishing chamber 107 is arranged at the periphery of the common power contact assembly 103 and the standby power contact assembly 104 so as to quickly extinguish arc and restrain current after power is cut off, and accidents are avoided. The constitution of the arc extinguishing chamber 107 can be referred to the prior art and will not be described in detail here.
It should be noted that, the first direction refers to the width direction of the whole single transfer switch device or the length direction of the whole automatic transfer switch device, that is, the direction indicated by the arrow of the straight line X shown in fig. 1; the second direction refers to the overall height direction of the single change-over switch device or the overall height direction of the automatic change-over switch device, namely the direction indicated by the arrow of the straight line Z shown in FIG. 1; the third direction refers to the length direction of the whole single change-over switch device or the width direction of the whole automatic change-over switch device, that is, the arrow of the straight line Y shown in fig. 1 points to the direction.
Further, the movable contact assembly 101 includes a support 11, a movable contact conductive bar 12 disposed in the support 11, a first elastic member 13, a first rotation shaft 14 fixed in the insulating housing 102 and penetrating the support 11 along a first direction, and a U-shaped connecting rod 15 connected to the support 11 and the rocker 106 respectively;
The whole support 11 is a cuboid, a containing space for containing the first elastic piece 13 is formed in the support, a first notch 111 for extending out of a part of the first elastic piece 13, a first limiting part 112 for limiting the rear movement of the brake contact conducting bar 12 are further formed in the top wall of the support 11, and a second limiting part 113 for limiting the front movement of the brake contact conducting bar 12 is further formed in the front side wall of the support 11, which is close to the front part of the movable contact conducting bar 12. Specifically, the first notch 111 is transverse to the top wall of the support 11, and extends along two side walls of the support 11 in the first direction to form a U-shaped notch; the first limiting parts 112 are provided with two limiting parts which are respectively arranged at the two side edges of the top wall of the support 11 in the first direction, and extend towards the second direction; the second limiting portions 113 are provided in two, respectively provided at both side edges of the front side wall of the support 11 in the first direction, both of which extend toward the third direction. Preferably, in order to save manufacturing cost, the first limiting portion 112 and the second limiting portion 113 may be formed by cutting and bending from the side wall of the support 11. Optionally, a second notch 114 is further provided on the front side wall of the support 11 near the front part of the movable contact conductor 12 for preventing the movable contact conductor 12 from being limited in rotation; the second notch 114 is provided in the front side wall of the support 11 at a position close to the movable contact conductive bar 12.
The movable contact conductive bar 12 has a strip structure, and a common movable contact 121 and a spare movable contact 122 are respectively arranged at two opposite sides of the top end of the front part in the second direction. The middle part of the movable contact conductive bar 12 is provided with a step 123 such that the front part thereof is lower than the rear part thereof in height. The side walls of the two sides of the moving contact conducting bar 12 in the first direction are also provided with first grooves 124 for embedding the lifting parts 131 so as to fixedly connect the moving contact conducting bar 12 with the first elastic piece 13.
The first elastic member 13 includes an elastic body, a pulling portion 131, and a handle portion 132; the elastic body comprises a movable part 133 and a contact part 134, the contact part 134 is in a U-shaped structure, two ends of the contact part 134 are close and bent downwards to extend reversely to form the movable part 133, and two free ends of the movable part 133 are bent upwards vertically to form the lifting part 131; the two free ends of the lifting part 131 extend out of the support 11 and then extend oppositely along the first direction to form a handle part 132; a movable space for the movable part 133 to move is reserved between the movable part 133 and the contact part 134; the movable contact conductive bar 12 is arranged between the handle part 132 and the top of the support 11; the lifting parts 131 are respectively embedded into the first grooves 124 to be fixedly connected with the movable contact conductive bars 12. In the present embodiment, the lifting portion 131 is disposed outside the contact portion 134, and the lifting portion 131 is disposed on two sidewalls of the support 11 at the position of the first notch 111; part of the mechanism of the first rotating shaft 14 in the support 11 is located in the movable space of the elastic body.
One end of the U-shaped connecting rod 15 connected to the rocker arm 106, U-shaped the other end of the connecting rod 15 is connected with the side wall of the support 11; the connection position of the U-shaped link 15 to the support 11 and the connection position thereof to the rocker arm 106 are located in the same side direction of the first rotation shaft 14. Referring to fig. 6 to 7, the support 11 follows the clockwise rotation when the swing arm 106 rotates clockwise, and the support 11 follows the counterclockwise rotation when the swing arm 106 rotates counterclockwise.
In addition, the movable contact conductive bar 12 is also connected with the load contact assembly 105 through the flexible connection piece 16, and the flexible connection piece 16 can be copper flexible connection.
As can be appreciated, referring to fig. 3, when the switching device is in the double-split position, the rear part of the movable contact conductive bar 12 is located at the top of the support 11, and the step 123 and the front part thereof are located on the front side wall of the support 11; in addition, the step 123 of the movable contact conductor bar 12 is spaced from the front side wall of the support 11 by a distance for tilting the movable contact conductor bar 12.
Referring to fig. 6, in the process of switching the switching device from the double-split position to the normal power supply closing position, the control and operation system 200 controls the rocker arm 106 to rotate clockwise, and the support 11 rotates clockwise with the first rotating shaft 14 as a base point under the traction of the U-shaped connecting rod 15; the movable contact conducting bar 12 arranged in the support 11 also rotates clockwise until abutting against the common power supply fixed contact assembly; at this time, under the action force of the common power supply static contact assembly, the movable contact conductive bar 12 rotates anticlockwise relative to the support 11, that is, the rear tail end of the movable contact conductive bar 12 tilts relative to the top wall of the support 11, when the lifting part 131 receives the upward pulling force provided by the movable contact conductive bar 12, the elastic main body deforms, the movable part 133 leans against the contact part 134 and generates elastic potential energy, the contact pressure of the common movable contact 121 in contact with the common power supply static contact assembly is provided, the movable contact is prevented from being easily disconnected with the static contact assembly to generate high-temperature and high-heat electric arcs when short circuit faults are encountered, and the short circuit fault current resistance performance and the short circuit current tolerance capability are improved. Similarly, referring to fig. 7, in the process of switching the switching device from the double-split position to the standby power switch-on position, the support 11 and the movable contact conductive bar 12 rotate anticlockwise until abutting against the standby power static contact assembly; at this time, under the action force of the stationary contact assembly of the standby power supply, the movable contact conductive bar 12 rotates clockwise relative to the support 11, that is, the front portion of the movable contact conductive bar 12 tilts relative to the support 11, the rear end of the movable contact conductive bar 12 abuts against the top wall of the support 11, when the lifting portion 131 receives the upward pulling force provided by the movable contact conductive bar 12, the elastic body deforms, the movable portion 133 leans against the contact portion 134 and generates elastic potential energy, and the contact pressure of the standby movable contact 122 contacting the stationary contact assembly of the standby power supply is provided.
As shown in fig. 8 to 17, the control and operation system 200 includes an operation case 201, a first side plate 202, a closing mechanism 203, a reversing mechanism 204, and a circuit mechanism 207, which are respectively provided in the operation case 201.
The first side plate 202 is vertically arranged at the bottom of the operation housing 201, and is provided with a Y-shaped opening 21; the circuit mechanism 207 is electrically connected with the reversing mechanism 204 and the switching-on mechanism 203 respectively so as to control the starting work of the reversing mechanism 204 and the switching-on mechanism 203; the switching-on mechanism 203 is used for driving the contact system to switch to a switching-on position; the reversing mechanism 204 is matched with the Y-shaped opening 21 and is used for controlling the contact system to be specifically switched to a common power supply switching-on position or a standby power supply switching-on position. The circuit mechanism 207 is of the prior art, and will not be described in detail here.
The control and operation system 200 further includes a second side plate 208 disposed parallel to the first side plate 202, and the closing mechanism 203 is disposed between the first side plate 202 and the second side plate 208.
Further, referring to fig. 12 to 14, the Y-shaped opening 21 is inverted Y-shaped; the Y-shaped opening 21 includes a high-level hole 211, a first extension hole 212 and a second extension hole 213 which are branched downward from the high-level hole 211; the extending directions of the first extending hole 212 and the second extending hole 213 are connected at an included angle. In the present embodiment, the first position switch 31 in the closing mechanism 203 is disposed on one side of the Y-shaped opening 21 in the first extension hole 212, and the second position switch 32 is disposed on one side of the Y-shaped opening 21 in the second extension hole 213.
Further, referring to fig. 8-14, the closing mechanism 203 includes a first position switch 31, a second position switch 32, a first abutment assembly 36 disposed on a first outer side of the first side plate 202, and a first electromagnetic driving assembly 33, a first linkage assembly 35, an L-shaped movable assembly 34, and a first reset assembly 37 disposed on a second outer side of the first side plate 202; the first outer side and the second outer side are opposite sides of the first side plate 202 in the first direction.
The first position switch 31 and the second position switch 32 are respectively disposed on the side walls of the first side plate 202, and are respectively electrically connected to the circuit mechanism 207. The first abutting component 36 is located between the first position switch 31 and the second position switch 32, and can abut and trigger the first position switch 31 or the second position switch 32 according to the swinging direction of the first abutting component, the first position switch 31 feeds back a common power switching-on signal when being abutted, and the second position switch 32 feeds back a standby power switching-on signal when being abutted. The L-shaped movable assembly 34 is provided with a second rotating shaft 343, and the second rotating shaft 343 can rotate with the second rotating shaft 343 as a base point. The first electromagnetic driving component 33 is fixedly connected with the L-shaped movable component 34, and the first electromagnetic driving component 33 provides power for the rotation of the L-shaped movable component 34. The first abutting component 36 is connected with the L-shaped movable component 34 through the first linkage component 35 after passing through the Y-shaped opening 21, and is driven to the first abutting component 36 to swing when the L-shaped movable component 34 rotates. The reversing mechanism 204 is disposed at the adjacent side of the first side plate 202 in the Y-shaped opening 21, and is rotatably connected to the first side plate 202, and under the control of the circuit mechanism 207, the reversing mechanism 204 can change the displacement track of a part of the structure of the first abutting component 36 in the Y-shaped opening 21, so as to change the swinging direction of the first abutting component 36. Meanwhile, the first abutting component 36 is fixedly connected with the first transmission shaft 209, and the first transmission shaft 209 rotates clockwise or anticlockwise by taking the central axis of the first abutting component 36 as a base point according to the swinging direction of the first abutting component.
Further, the first electromagnetic driving assembly 33 extends along the third direction as a whole, and includes a hollow first column 331, a first cross bar 332, a first coil, a first yoke, a first stationary core 335, and a first movable core 336; specifically, the first cylinder 331 extends axially along the third direction; the first coil, the first yoke, the first static core 335, and the first moving core 336 are partially disposed in the first column 331; wherein, the first coil is electrically connected with the circuit mechanism 207, the circuit mechanism 207 provides electric energy to the first coil, and when the first coil is electrified, magnetic force is generated to enable the first movable iron core 336 to displace towards the first static iron core 335; part of the first movable iron core 336 can axially displace in the first column 331, and the other part of the first movable iron core extends out of the first column 331 and is fixedly connected with the first transverse rod 332; the first transverse rod 332 and the first movable iron core 336 are positioned on the same straight line, and the other end of the first transverse rod 332 is fixedly connected with the L-shaped movable assembly 34. It should be noted that, the relative positions of the first coil, the first yoke and the corresponding iron core and the principle thereof may refer to the prior art, and will not be described in detail herein.
As can be appreciated, the first stationary core 335 and the L-shaped movable assembly 34 are respectively located on opposite sides of the first movable core 336 in the third direction; the circuit mechanism 207 controls the first coil energization state, and when the first coil is energized, the first movable iron core 336 is displaced in the direction of the first stationary iron core 335, and the L-shaped movable assembly 34 is pulled to rotate. In the present embodiment, referring to fig. 9, when the first coil is energized, the first movable iron core 336 and the first cross bar 332 are displaced leftward, and the L-shaped movable assembly 34 is rotated counterclockwise with the second rotation shaft 343 as a base point; after the first coil is powered off, the first movable core 336 and the first cross bar 332 are displaced rightward by the first reset assembly 37, and the L-shaped movable assembly 34 is rotated clockwise with the second rotation shaft 343 as a base point, and is restored to the original state.
Further, the first reset element 37 is located above the L-shaped movable element 34, and includes a first fixing rod 371 and a second elastic element 372. The first fixing rod 371 is fixed to the first side plate 202, and of course, both ends of the first fixing rod 371 may be fixed to the first side plate 202 and the second side plate 208, respectively; one end of the second elastic member 372 is fixedly connected to the first fixing rod 371, and the other end of the second elastic member 372 is fixedly connected to the L-shaped movable assembly 34. As can be appreciated, when the first coil is in the energized state, the L-shaped movable assembly 34 rotates counterclockwise to pull the second elastic member 372, and the second elastic member 372 deforms and generates elastic potential energy; after the first coil is de-energized, the elastic potential energy acts on the L-shaped movable element 34 to restore it to its original state.
Further, the L-shaped movable assembly 34 is disposed on the extending track of the first cross bar 332, and includes a first link 341, a second link 342, a second rotating shaft 343, and two L-shaped members. The two L-shaped members are symmetrically arranged, and the single L-shaped member includes a vertical side portion 344 extending in the second direction and a lateral side portion 345 extending in the entire width direction of the automatic transfer switching device. Both ends of the first connecting rod 341 are respectively connected with the transverse edge parts 345 of the two L-shaped pieces; two ends of the second link 342 are respectively connected to the vertical edge portions 344 of the two L-shaped members. One end of the second rotating shaft 343 is fixed on the first side plate 202, and the other end sequentially passes through the folding points of the two L-shaped members, so that the two L-shaped members can be rotatably connected to the second rotating shaft 343. In addition, the end of the first cross bar 332 is fixedly connected to the second link 342, and the two extending directions thereof are perpendicular to each other and are at the same height. The other end of the second elastic member 372 is fixedly connected to the end of the lateral side portion 345.
Further, the first linkage assembly 35 includes at least one first connection plate 351 for transmission, one end of the first connection plate 351 is connected to the outer peripheral wall of the first connecting rod 341, and the other end of the first connection plate is located at the same height as the high-level hole 211, and is used for connecting a part of the first abutment assembly 36 passing through the Y-shaped opening 21, so that the first abutment assembly 36 swings when the L-shaped movable assembly 34 rotates. In the present embodiment, the first linkage assembly 35 includes two first connection plates 351, and the two first connection plates 351 are symmetrically disposed and are parallel to the plane of the first side plate 202; preferably, the first linkage assembly 35 further includes a reinforcing rib, both ends of which are fixedly connected to the middle portions of the two first connection plates 351, respectively.
Further, the first abutment assembly 36 includes a first connecting rod 361, a first transverse plate 362, and a first rotating member 363. The first transverse plate 362 and the first rotating member 363 are located on the first outer side of the first side plate 202, and both are disposed parallel to the first side plate 202; one end of the first transverse plate 362 is connected to the first rotary member 363, and the other end is connected to the first connecting rod 361; one end of the first connecting rod 361 is connected with the first transverse plate 362, and the other end of the first connecting rod 361 passes through the Y-shaped opening 21 to be connected with the first linkage assembly 35, specifically, the other end is vertically arranged on the first connecting plate 351 in a penetrating way; the first rotating member 363 is further fixedly connected to the first transmission shaft 209, specifically, the first transmission shaft 209 vertically passes through the first rotating member 363 to be rotatably connected to the first side plate 202, and the first transmission shaft 209 is disposed above the connection point between the first rotating member 363 and the first transverse plate 362. Optionally, a waist-shaped hole 22 for limiting the rotation track of the first rotating member 363 is further provided on the first side plate 202, the first rotating member 363 is hinged with the first transverse plate 362 through a sixth rotating shaft, and the end of the sixth rotating shaft is provided in the waist-shaped hole 22; in addition, the shape of the waist-shaped hole 22 is adapted to the track of the rotation of the first rotating member 363.
As can be appreciated, under the action of the reversing mechanism 204, the first connecting rod 361 is displaced from the high-level hole 211 to the first extension hole 212, one end of the first transverse plate 362 abuts against the first position switch 31, and the other end of the first transverse plate 362 rotates the first transmission shaft 209 clockwise by pulling the first rotating member 363; the first transverse plate 362 is used to connect the end of the first rotating member 363 to abut the second position switch 32 when the first connecting rod 361 is displaced from the high position hole 211 to the second extending hole 213, and the first transverse plate 362 rotates the first transmission shaft 209 counterclockwise by pushing the first rotating member 363.
As shown in fig. 12-17, the reversing mechanism 204 includes a reversing element 41, a third rotating shaft 42, a second reset assembly 43, and a second electromagnetic drive assembly 44 electrically connected to the circuit mechanism 207.
The reversing member 41 includes a pointing portion 411, a first adsorbing portion 412, and a first connecting portion 413; the pointing portion 411 and the first connecting portion 413 are attached to the first side plate 202 in parallel, specifically, the tail portion of the pointing portion 411 is rotatably connected to the second outer side wall of the first side plate 202 through the third rotating shaft 42, the front end of the pointing portion is acute, and the end portion can point to the Y-shaped opening 21 and is projected onto the Y-shaped opening 21; the pointing portion 411 is configured such that the front end of the second electromagnetic driving assembly 44 points to one of the extending holes when the second electromagnetic driving assembly 44 is not energized, and the front end of the second electromagnetic driving assembly 44 points to the other extending hole when the second electromagnetic driving assembly 44 is energized by the first adsorbing portion 412. The first adsorption part 412 is fixedly connected with the pointing part 411 through the first connection part 413, and the first adsorption part 412 and the pointing part 411 are respectively arranged at two sides of the third rotating shaft 42 in the third direction; the first adsorption part 412 is also perpendicular to the plane of the pointing part 411 and is disposed below the second electromagnetic driving assembly 44; the first adsorption part 412 is made of metal such as iron, nickel, cobalt, etc. that can be adsorbed by the magnet.
The second electromagnetic drive assembly 44 extends generally in a second direction and includes a hollow second cylinder, a second coil, a second yoke, and a second core. Specifically, the second coil, the second magnetic yoke and the second iron core are arranged in the second column; the second core portion structure further extends from the bottom of the second column, and is exposed outside the second column for adsorbing the first adsorption portion 412. It should be noted that, the relative positions of the second coil, the second yoke and the second core and the principle thereof may refer to the prior art, and will not be further described herein.
The second reset assembly 43 includes a third elastic member disposed below the first adsorption portion 412, wherein one end of the third elastic member is fixedly connected to the bottom of the operation housing 201, and the other end of the third elastic member is connected to the first adsorption portion 412 at a side far from the third rotation shaft 42.
As can be understood, referring to fig. 16 to 17, when the second coil is energized, the second iron core attracts the first adsorption portion 412, the whole reversing element 41 rotates around the third rotation shaft 42 as a base point, and the direction portion 411 thereof rotates from being originally directed to one of the first extension hole 212 and the second extension hole 213 to being directed to the other; at the same time, the third elastic member receives the force from the first adsorption portion 412 to generate elastic potential energy. After the second coil is powered off, the first adsorption portion 412 is restored to the original position under the action of the third elastic member, that is, the whole reversing member 41 rotates in the opposite direction with the third rotating shaft 42 as the base point, and the pointing portion 411 is also restored to the original position. By changing the pointing direction of the pointing portion 411, the displacement trajectory of the first connecting rod 361 in the Y-shaped opening 21 can be controlled, thereby controlling the rotation direction of the first driving shaft 209. In the present embodiment, the pointing portion 411 is configured to point to the second extension hole 213 when no external force is applied, and point to the first extension hole 212 when the second electromagnetic driving assembly 44 is applied.
Preferably, the control and operating system 200 further comprises a manual operating mechanism comprising a first pressing assembly 61 for manually controlling the reversing mechanism 204, and a toggle assembly 64 for manually controlling the closing mechanism 203.
Further, as shown in fig. 15-17, the first pressing component 61 is disposed above the second electromagnetic driving component 44, and includes a first button and a first spring; the first button can be arranged on the operation shell 201 of the automatic transfer switch electrical appliance, and the bottom of the first button is also provided with a first supporting rod for the first spring to pass through; the first spring is used for resetting the first button after the first button is downwardly displaced. In addition, in order to cooperate with the first pressing assembly 61, the manual operating mechanism further comprises a second linkage assembly 62 connected to the reversing element 41; the second linkage assembly 62 includes a third rotational member 621, a fourth rotational shaft 622, and a first transmission member 623. Specifically, the third rotating member 621 has a U-shaped structure and is disposed between the second electromagnetic driving assembly 44 and the first pressing assembly 61; the fourth rotating shaft 622 is vertically fixed on the side wall of the first side plate 202, and passes through two opposite side walls of the third rotating member 621, so that the third rotating member 621 can rotate with the fourth rotating shaft 622 as a base point; the third rotating member 621 is provided with an extension portion extending toward the first transmission member 623 near the side wall of the first side plate 202, and both ends of the first transmission member 623 are respectively connected to the first connecting portion 413 of the reversing member 41 and the extension portion.
As can be appreciated, the user can manually press the first button to drive the third rotating member 621 to rotate, the extending portion thereof is lifted relative to the second electromagnetic driving assembly 44, and the first driving member 623 drives the pointing portion 411 of the reversing member 41 to point to the first extending hole 212; the pointing portion 411 is restored to the original state by means of the third elastic member in a state where no other external force is applied, i.e., the pointing portion 411 is pointed toward the second extension hole 213.
As shown in fig. 8 and 10, the toggle assembly 64 includes a first toggle 641 and a fifth rotating shaft 642 extending along the extending direction of the second rotating shaft 343 to the outside of the automatic transfer switching device; both ends of the fifth rotating shaft 642 are fixedly connected with the first poking piece 641 and the L-shaped piece respectively; the user can manually rotate the first paddle 641 to control the rotation of the L-shaped movable assembly 34. Alternatively, the fifth rotating shaft 642 is an extension of the second rotating shaft 343 extending along the outer axial direction of the automatic transfer switching device.
To sum up, in the present embodiment, when the automatic transfer switch is in the double-split position, the first connecting rod 361 is located at the high-position hole 211, and the pointing portion 411 of the reversing element 41 points to the second extending hole 213.
When the automatic transfer switch device is switched from the double-split position to the common power supply closing position, the L-shaped movable assembly 34 rotates anticlockwise by taking the second rotating shaft 343 as a base point, and drives the first connecting rod 361 to displace downwards from the position of the high-level hole 211; since the pointing portion 411 of the reversing element 41 points to the second extending hole 213, the first connecting rod 361 can only slide into the first extending hole 212; accordingly, the first abutment assembly 36 is offset to the left as a whole with respect to the first side plate 202, and the first drive shaft 209 rotates clockwise; the moving contact strip 12 rotates synchronously and clockwise, abutting against a common power contact assembly 103 located above the moving contact strip 12. Meanwhile, the rear tail end of the movable contact conducting bar 12 is tilted relative to the top wall of the support 11, when the lifting part 131 receives the upward pulling force provided by the movable contact conducting bar 12, the elastic main body deforms, the movable part 133 leans against the contact part 134 and generates elastic potential energy, and the contact pressure of the common movable contact 121 in contact with the common power supply static contact assembly is provided.
When the automatic transfer switch device is switched from the double-split position to the standby power switch-on position, the L-shaped movable assembly 34 also rotates anticlockwise by taking the second rotating shaft 343 as a base point, and drives the first connecting rod 361 to displace downwards from the position of the high-level hole 211; however, under the control of the circuit mechanism 207, the reversing mechanism 204 is activated to change the direction of the direction portion 411 from the original direction toward the second extending hole 213 to the direction toward the first extending hole 212, and the first connecting rod 361 can only slide into the second extending hole 213; accordingly, the first abutment assembly 36 is offset to the right as a whole relative to the first side plate 202, and the first drive shaft 209 rotates counterclockwise; the moving contact strip 12 rotates synchronously counterclockwise and abuts the backup power contact assembly 104 located below the moving contact strip 12. Meanwhile, when the front part of the movable contact conducting bar 12 is tilted relative to the support 11 and the lifting part 131 receives the upward pulling force provided by the movable contact conducting bar 12, the elastic body deforms, the movable part 133 leans against the contact part 134 and generates elastic potential energy, and the contact pressure of the standby movable contact 122 in contact with the standby power supply static contact assembly is provided.
The invention adopts a single contact group and a single transmission shaft to drive by redesigning the internal structure of the change-over switch device, has relatively simple structure, low cost and small volume, can realize the switching of three working positions, meets the actual application requirement, has high reliability, effectively reduces the manufacturing cost and reduces the whole volume of the switch. Meanwhile, by utilizing the position change of the movable contact conducting bar 12 relative to the support 11 at different closing positions, elastic potential energy for enabling the movable contact conducting bar 12 to be abutted against a corresponding contact assembly is generated for the first elastic piece 13, and the movable contact conducting bar 12 can be stably and reliably abutted against the corresponding contact assembly; thereby improving the short-circuit fault current tolerance and the short-circuit current tolerance.
In addition, based on the adoption of a single transmission shaft transmission, the internal structure of the control and operation system 200 is redesigned, and compared with the related art, the structure is relatively simple, and the manufacturing cost and the whole volume of the switch are effectively reduced.
It is to be understood that the above examples only represent preferred embodiments of the present invention, which are described in more detail and are not to be construed as limiting the scope of the invention; it should be noted that, for a person skilled in the art, the above technical features can be freely combined, and several variations and modifications can be made without departing from the scope of the invention; therefore, all changes and modifications that come within the meaning and range of equivalency of the claims are to be embraced within their scope.
Claims (10)
1. The three-working-position switching switch device is characterized by comprising an insulating shell (102), a common power contact assembly (103), a standby power contact assembly (104), a load contact assembly (105), a movable contact assembly (101) and a rocker arm (106), wherein the common power contact assembly (103), the standby power contact assembly (104), the load contact assembly (105), the movable contact assembly (101) and the rocker arm (106) are respectively arranged on the insulating shell (102);
The movable contact assembly (101) comprises a support (11), a movable contact conducting bar (12) arranged at the top of the support (11), a first elastic piece (13) arranged in the support (11), a first rotating shaft (14) fixed in the insulating shell (102) and penetrating the support (11) along a first direction, and a U-shaped connecting rod (15) respectively connected with the support (11) and the rocker arm (106);
The front part of the movable contact conducting bar (12) is arranged between the common power contact assembly (103) and the standby power contact assembly (104); the rocker arm (106) drives the support (11) and the movable contact conducting bar (12) to rotate by taking the first rotating shaft (14) as a base point; the movable contact conducting bar (12) is configured to abut against the common power contact assembly (103) or the standby power contact assembly (104) or not abut against the common power contact assembly and the standby power contact assembly according to the rotation direction of the rocker arm (106);
The first elastic piece (13) extends out of the support (11) and is connected with the movable contact conducting bar (12); after the movable contact conducting bar (12) is abutted against the corresponding contact assembly, the front end or the tail end of the movable contact conducting bar is tilted relative to the support (11) and acts on the first elastic piece (13) to deform the first elastic piece, and the first elastic piece (13) generates elastic potential energy to enable the movable contact conducting bar (12) to be abutted against the corresponding contact assembly;
The first elastic piece (13) comprises an elastic main body capable of deforming and a lifting part (131) used for being connected with the movable contact conducting bar (12);
the lifting part (131) is arranged to be subjected to an upward pulling force provided by the movable contact conducting bar (12) when the front end or the tail end of the movable contact conducting bar (12) is tilted relative to the support (11) so as to promote the elastic body to deform.
2. The three-operating-position switching device according to claim 1, wherein the elastic body comprises a movable portion (133) and a contact portion (134) for abutting against the inner wall of the support (11), two ends of the contact portion (134) are close together and bent downwards to extend reversely to form the movable portion (133), and two free ends of the movable portion (133) are bent vertically upwards to extend to form the lifting portion (131);
the movable part (133) is close to the contact part (134) under the action of the lifting part (131) and generates the elastic potential energy.
3. The three-position switching device according to claim 2, characterized in that the top wall of the support (11) is provided with a first notch (111) for the pulling part (131) to protrude so as to be connected with the movable contact conductive bar (12);
The first notch part (111) is transversely cut on the top wall of the support (11) and extends along two side walls of the support (11) in the first direction to form a U-shaped notch; the part of the structure of the lifting part (131) is arranged at the position of the first notch part (111) on the two side walls of the support (11).
4. An automatic transfer switching apparatus includes a contact system and a control and operating system (200) for controlling switching of the contact system upon power failure; the contact system comprises a plurality of change-over switch devices; the switching device is characterized in that the switching device is adopted according to any one of the above claims 1-3; the control and operating system (200) is provided with a first transmission shaft (209) extending into the switching device for fixed connection with the rocker arm (106) thereof.
5. The automatic transfer switching device according to claim 4, wherein the control and operation system (200) comprises an operation housing (201), a first side plate (202) respectively arranged in the operation housing (201), a switching-on mechanism (203) for driving the contact system to switch to a switching-on position, a reversing mechanism (204) for switching the contact system to a common power switching-on position or a standby power switching-on position, and a circuit mechanism (207) respectively electrically connected with the switching-on mechanism (203) and the reversing mechanism (204) to control the operation of the two;
The first side plate (202) is provided with a Y-shaped opening (21); the partial structure of the closing mechanism (203) passes through the Y-shaped opening (21) to be connected with the first transmission shaft (209), and can displace in the Y-shaped opening (21) to drive the first transmission shaft (209) to rotate; the reversing mechanism (204) is rotatably connected to the adjacent side position of the first side plate (202) in the Y-shaped opening (21), and the adjacent side position changes the displacement track of a part of the structure of the closing mechanism (203) in the Y-shaped opening (21) under the control of the circuit mechanism (207).
6. The automatic transfer switching device according to claim 5, wherein the closing mechanism (203) comprises a first abutment assembly (36) provided on one side of the first side plate (202), and a first electromagnetic driving assembly (33), an L-shaped movable assembly (34) and a first reset assembly (37) connected to the L-shaped movable assembly (34) provided on the other side of the first side plate (202);
The L-shaped movable assembly (34) is provided with a second rotating shaft (343) one end of which is vertically fixed on the first side plate (202); the first electromagnetic driving assembly (33) is provided with a first transverse rod (332) which extends to and is fixedly connected with the L-shaped movable assembly (34);
One end of the first abutting component (36) is connected with the first transmission shaft (209), and the other end of the first abutting component is provided with a first connecting rod (361) which penetrates through the Y-shaped opening (21) and is connected with the L-shaped movable component (34); the first connecting rod (361) is arranged in parallel with the second rotating shaft (343);
The first transverse rod (332) is driven by the first electromagnetic driving assembly (33) to axially displace, the L-shaped movable assembly (34) is pulled to rotate to a closing position by taking the second rotating shaft (343) as a base point, or the L-shaped movable assembly (34) is restored to an original position under the action of the first resetting assembly (37).
7. The automatic transfer switching device according to claim 6, wherein the Y-shaped opening (21) is inverted Y-shaped; the Y-shaped opening (21) comprises a high-level hole (211), and a first extension hole (212) and a second extension hole (213) which are downwards branched from the high-level hole (211).
8. The automatic transfer switching device of claim 7, wherein the reversing mechanism (204) includes a reversing element (41), a third rotating shaft (42), a second reset assembly (43), and a second electromagnetic drive assembly (44) electrically connected to the circuit mechanism (207);
The third rotating shaft (42) is fixedly connected to the first side plate (202) through the reversing piece (41), and the reversing piece (41) can rotate by taking the third rotating shaft (42) as a base point;
The reversing piece (41) comprises a first adsorption part (412) and a pointing part (411) which are respectively arranged at two sides of the third rotating shaft (42) in the third direction; an end of the pointing part (411) points to the Y-shaped opening (21), and the end can be projected on the Y-shaped opening (21); the first adsorption part (412) is arranged at a position adjacent to the second electromagnetic driving assembly (44) and is connected with the second resetting assembly (43);
The first adsorption part (412) drives the pointing part (411) to point to one of the first extending hole (212) and the second extending hole (213) under the action of the second electromagnetic driving component (44), or drives the pointing part (411) to resume pointing to the other of the first extending hole and the second extending hole (213) under the action of the second resetting component (43).
9. The automatic transfer switching device according to claim 6, wherein the first abutment assembly (36) comprises the first connecting rod (361), a first rotating member (363) fixedly connected to the first transmission shaft (209), and a first transverse plate (362) respectively connected to the first connecting rod (361) and the first rotating member (363) to function as a transmission;
The first transverse plate (362) and the first rotating piece (363) are arranged in parallel with the first side plate (202); the first transmission shaft (209) penetrates through the first rotating piece (363) and is rotatably connected with the first side plate (202).
10. The automatic transfer switching device of claim 5, wherein the control and operating system (200) further comprises a manual operating mechanism; the manual operation mechanism comprises a first pressing component (61) for manually controlling the reversing mechanism (204) and a toggle component (64) for manually controlling the closing mechanism (203).
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CN202434751U (en) * | 2011-04-08 | 2012-09-12 | 番禺得意精密电子工业有限公司 | Electric connector |
CN208460583U (en) * | 2018-05-31 | 2019-02-01 | 深圳市泰永电气科技有限公司 | Contact apparatus and automatic transfer switching electric appliance |
CN109192568B (en) * | 2018-09-14 | 2023-10-20 | 浙江现代电气有限公司 | Change-over switch |
CN109494095B (en) * | 2019-01-10 | 2024-02-27 | 常熟开关制造有限公司(原常熟开关厂) | Dual-power transfer switch |
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2022
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Patent Citations (3)
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CN104505289A (en) * | 2014-11-19 | 2015-04-08 | 余正明 | Switch using torsional spring as terminal |
CN110265240A (en) * | 2019-05-17 | 2019-09-20 | 深圳市泰永电气科技有限公司 | The operating mechanism of dual-power transfer switch |
CN111696815A (en) * | 2020-06-17 | 2020-09-22 | 深圳市泰永电气科技有限公司 | Contact device and automatic change-over switch electric appliance |
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