A cable connector with a separation switch
By introducing a separation assembly of the rotating body and the rotating shaft into the cable connector, the automatic power-on-off function of the cable connector is realized, solving the problems of inconvenient plug-and-removal operation and safety hazards in the prior art, and providing a convenient operation method.
Patent Information
- Application Number
- CN202410826589.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-25
- Publication Date
- 2025-08-12
- Estimated Expiration
- 2044-06-25
AI Technical Summary
The existing cable connector cannot be automatically powered off after plugging and unplugging in an explosive environment, which poses safety risks and is inconvenient to operate.
A cable connector with a separation switch is designed, and the automatic power-on-off function of the connector is realized by setting a separation assembly of the rotating body, the rotating shaft and the linkage, and the rotating body is driven by the rotating body to realize the conduction or separation of the contacts.
It realizes automatic power-on-off operation of the cable connector, and the external rotary body is convenient to operate, safe and reliable, avoiding safety hazards caused by human plugging and unplugging.
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Figure CN118539235B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of cable connectors, and in particular to a cable connector with a separation switch. Background Art
[0002] The country has strict design and use requirements for electrical equipment used in explosive environments, necessitating frequent plugging and unplugging of cable connectors. Conventional cable connectors achieve explosion-proof protection by forming a flameproof interface between the plug and the socket when the plug is inserted. However, this design prevents the power outlet from automatically shutting off when the plug is removed, requiring manual power shutoff. This poses a safety hazard and can lead to electrical leakage or electric shock.
[0003] Chinese patent No. 201410015887.1 discloses a cable connector capable of automatic power-off and plug-in / out, comprising a socket portion 01 and a plug portion 02, characterized in that the socket portion 01 cooperates with the plug portion 02, and rotation of the plug portion 02 drives a rotary switch 16 to rotate; the rotary switch 16 is connected via a central rotating shaft 14. The technical solution provided by the present invention can produce multiple beneficial effects: first, when the plug portion is inserted into the plug terminal, the power supply to the socket portion is disconnected; second, after the plug portion is inserted into the socket portion, the plug terminal and the socket terminal are connected; at the same time, the power supply is automatically connected, and the socket portion and the plug portion are locked and connected as a whole by an axial slider and an axial slot; third, all power-on and power-off operations are automatically interlocked during the plug portion insertion and removal process, which is convenient, safe and reliable.
[0004] However, it is still necessary to plug and unplug to cut off the power, which is inconvenient to operate. Summary of the Invention
[0005] The purpose of the present invention is to provide a cable connector with a disconnect switch, which can realize the connection or disconnection of the connector by setting a separation component and cooperating with a rotation method to solve the technical problem of inconvenient power-off operation by plugging and unplugging in the prior art.
[0006] To achieve the above object, the present invention provides the following technical solutions:
[0007] A cable connector with a disconnect switch, characterized in that it includes a connector body and a disconnect assembly that disconnects the connector from power. The connector body is formed with a first wiring assembly and a second wiring assembly. The disconnect assembly is located between the first wiring assembly and the second wiring assembly to connect or disconnect the first wiring assembly and the second wiring assembly. The disconnect assembly includes a rotating body, a rotating shaft, and a linkage member provided on the connector body. The first wiring assembly includes a guide pin 1, and the second wiring assembly includes a guide pin 2. One end of the guide pin 1 is connected to a wire, and the other end extends toward one side of the disconnect assembly and is formed with a contact 1. One end of the guide pin 2 is connected to a wire, and the other end extends toward one side of the disconnect assembly and is formed with a contact 2. The rotating body is sleeved on the connector body. The linkage member is fixedly connected to the rotating shaft. The rotating body drives the linkage member to rotate synchronously with the rotating body. One end of the rotating shaft extends toward one end of the second wiring assembly. The disconnect assembly also includes a rotating block provided on the rotating shaft. The rotating shaft is provided with a rotating block that rotates synchronously with the rotating shaft. The rotating block is adapted to be equipped with a conducting portion so that the conducting portion can connect or disconnect with the contact 1 and the contact 2 during rotation.
[0008] The present invention is further provided that the conductive part includes a first contact block and a second contact block, and the first contact block and the second contact block are arranged at both ends of the vertical direction of the rotating block. During the rotation process, the rotating block drives the first contact block and the second contact block to move in the vertical direction. At the same time, a conductive surface and a separation surface are formed on the rotating block. The first contact block and the second contact block are formed with a contact three that is conductive or separated from contact one and contact two. When the first contact block and the second contact block are in contact with the conductive surface, the connector is in a conductive state. When the first contact block and the second contact block are in contact with the separation surface, the connector is in a disconnected state.
[0009] The present invention further provides that the rotating block is evenly distributed with extension arms, a touch plate groove is formed on the extension arm, a touch plate is provided in the touch plate groove as a conducting part, and contact four is correspondingly formed on the touch plate to be connected to or separated from contact one and contact two.
[0010] The present invention is further provided with a shell provided on the outside of the first contact block, the second contact block and the rotating block, and a placement cavity provided in the shell, the first contact block, the second contact block and the rotating block are located in the placement cavity, wherein a limiting spring is provided on the side of the first contact block and the second contact block away from the rotating block, one end of the limiting spring is connected to the wall of the placement cavity, and when the limiting spring is turned on, the first contact block and the second contact block are pressed against the conduction surface, and contact one, contact two and contact three are in contact; when disconnected, the limiting spring presses the first contact block and the second contact block against the separation surface, and provides movable space and force for the first contact block and the second contact block during the rotation of the rotating block.
[0011] The present invention further provides that the first contact block and the second contact block are recessed on one side away from the rotating block to form a limit spring placement hole, and part of the limit spring is located in the limit spring placement hole.
[0012] The present invention further provides that a sleeve housing is provided at one end of the connector body close to the first wiring assembly, an open slot is formed on the sleeve housing, and the open slot is used for the rotation arm of the linkage member to rotate, and the linkage member has at least one rotation arm.
[0013] The present invention is further provided that the linkage includes a linkage body, a first rotating arm and a second rotating arm, the first rotating arm and the second rotating arm are located on the linkage body, an opening is opened in the center of the linkage body for connecting the rotating shaft, the first rotating arm and the second rotating arm rotate about the center of the linkage body, and the corresponding distal ends of the first rotating arm and the second rotating arm are connected to the slots formed on the inner wall surface of the rotating body.
[0014] The present invention is further provided that the first wiring assembly includes a wire introduction seat, a first wiring seat, a mounting plate, a wiring post and a guide pin 1. The wire introduction seat is fixedly connected to the first wiring seat and is arranged on the mounting plate. The wire introduction seat and the first wiring seat are correspondingly formed with wiring cavities for accommodating wires. The wires are connected to the wiring post and then connected to the guide pin 1. The first wiring assembly also includes a fixing plate and a connecting plate for fixing the guide pin 1. The fixing plate and the connecting plate form mounting grooves corresponding to the positions of the guide pin 1, and the mounting grooves are distributed at the edges of the fixing plate and the connecting plate.
[0015] The present invention further provides that the second wiring assembly includes a guide pin seat, guide pin 2, a connecting seat and a second wiring seat, a connecting terminal is provided on the second wiring seat, the connecting terminal is connected to one end of guide pin 2, the guide pin 2 passes through the connecting seat, and the connecting seat is connected to the second wiring seat.
[0016] The present invention is further provided that the connecting plate forms an inner cavity, and a lower pressure block, an upper pressure block and a stabilizing block sleeved on the rotating shaft are arranged in the inner cavity, the lower pressure block and the upper pressure block are arranged at both ends of the stabilizing block in the vertical direction, and an action spring is provided on the side of the upper pressure block and the lower pressure block close to the inner cavity wall. The stabilizing block rotates synchronously with the rotating shaft, and the stabilizing block and the upper pressure block and the lower pressure block always remain in a compressed state during the rotation process.
[0017] Beneficial effects of the present invention: The present invention realizes the power on and off operation of the cable connector, realizes external operation, and can be realized by simply rotating the rotating body and cooperating with the internal structure, which is easy to operate. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] The drawings described herein are used to provide a further understanding of the present application and constitute a part of the present application. The illustrative embodiments of the present application and their descriptions are used to explain the present application and do not constitute an improper limitation on the present application. In the drawings:
[0019] Figure 1 The three-dimensional embodiment of the present invention Figure 1 ;
[0020] Figure 2 The three-dimensional embodiment of the present invention Figure 2 ;
[0021] Figure 3 This is a schematic diagram of the local structure of Example 1 of the present invention. Figure 1 ;
[0022] Figure 4 A side view of embodiment 1 of the present invention;
[0023] Figure 5 for Figure 4 Cross-sectional view at CC;
[0024] Figure 6 This is a schematic diagram of the local structure of Example 1 of the present invention. Figure 2 ;
[0025] Figure 7 This is a schematic diagram of the local structure of Example 1 of the present invention. Figure 3 ;
[0026] Figure 8 This is a schematic diagram of the local structure of Example 1 of the present invention. Figure 4 ;
[0027] Figure 9 This is a schematic diagram of the local structure of Example 1 of the present invention. Figure 5 ;
[0028] Figure 10 This is a schematic structural diagram of a rotating block according to embodiment 1 of the present invention;
[0029] Figure 11 This is a schematic structural diagram of the upper and lower pressing blocks and the stabilizing block of Example 1 of the present invention;
[0030] Figure 12 A perspective view of embodiment 2 of the present invention;
[0031] Figure 13 This is a schematic diagram of the partial structure of Example 2 of the present invention;
[0032] Figure 14 A top view of embodiment 2 of the present invention;
[0033] Figure 15 for Figure 14 Cross-sectional view at DD in the middle;
[0034] Reference numerals:
[0035] 10. Connector body; 20. Separation assembly; 201. Rotating body; 2011. Notch; 202. Rotating shaft; 203. Linkage member; 2031. First rotating arm; 2032. Second rotating arm; 2033. Linkage member body; 204. First contact block; 205. Second contact block; 206. Rotating block; 2061. Conductive surface; 20611. First guide surface; 20612. Second guide surface; 20613. Concave surface; 2062. Separation surface; 208. Limit spring placement hole; 209. Contact block body; 2010. Protrusion; 201 1. Contact 3; 30. First wiring assembly; 301. Guide pin 1; 3011. Contact 1; 302. Wire lead-in socket; 303. First wiring socket; 304. Mounting plate; 305. Terminal block; 306. Fixing plate; 307. Connecting plate; 3071. Inner cavity; 3072. Lower pressing block; 3073. Upper pressing block; 3074. Stabilizing block; 30741. Recessed surface; 3075. Pressing block body; 3076. Raised block; 308. Mounting slot; 40. Second wiring assembly; 401. Guide pin 2; 4011. Contact 2; 402. Guide pin socket; 403, connecting seat; 404, second terminal seat; 50, housing; 501, placement cavity; 60, sleeve housing; 601, opening slot; 70, extension arm; 701, contact plate slot; 80, touch plate; 801, contact point four. DETAILED DESCRIPTION
[0036] The following will describe the implementation methods of the present application in detail with reference to the accompanying drawings and examples, so that the implementation process of how the present application applies technical means to solve technical problems and achieve technical effects can be fully understood and implemented accordingly. Example 1
[0037] like Figures 1-11As shown, the present invention is a cable connector with a disconnect switch, including a connector body 10 and a disconnect assembly 20 for disconnecting the connector. A first wiring assembly 30 and a second wiring assembly 40 are formed on the connector body 10. The disconnect assembly 20 is located between the first wiring assembly 30 and the second wiring assembly 40, so that the first wiring assembly 30 and the second wiring assembly 40 are connected or disconnected. The disconnect assembly 20 includes a rotating body 201, a rotating shaft 202, a linkage 203, a first contact block 204, and a second contact block 205 arranged on the connector body 10, wherein the first contact block and the second contact block serve as a conducting portion, the first wiring assembly 30 includes a guide pin 1 301, and the second wiring assembly 40 includes a guide pin 2 401. One end of the guide pin 1 301 is connected to the wire, and the other end extends toward one side of the disconnect assembly 20 and is formed with a contact 1 3011. One end of the guide pin 2 401 is connected to the wire, and the other end extends toward one side of the disconnect assembly 20 and is formed with a contact 2 4011. The rotating body 201 is sleeved on the connector body 10 The linkage member 203 rotates synchronously with the rotating body 201, the linkage member 203 is fixedly connected to the rotating shaft 202, one end of the rotating shaft 202 extends to one end of the second wiring assembly 40, and a rotating block 206 matching the first contact block 204 and the second contact block 205 is provided on the rotating shaft 202. The first contact block 204 and the second contact block 205 are located at both ends of the rotating block 206 in the vertical direction. The rotating block 206 rotates synchronously with the rotating shaft 202. During the rotation process, the rotating block 206 drives the first contact block 204 and the second contact block 205 to rotate synchronously. The second contact block 205 moves vertically, and a conducting surface 2061 and a separating surface 2062 are formed on the rotating block 206. The first contact block 204 and the second contact block 205 are formed with a third contact 2011 that connects to or separates from the first contact 3011 and the second contact 4011. When the first contact block 204 and the second contact block 205 are in contact with the conducting surface 2061, the connector is in a conducting state. When the first contact block 204 and the second contact block 205 are in contact with the separating surface 2062, the connector is in a disconnected state. One or two third contacts 2011 on the first contact block 204 and the second contact block 205 can be provided on the same side.
[0038] The first contact block 204, the second contact block 205 and the rotating block 206 are provided with a shell 50 on the outside, and a placement cavity 501 is provided in the shell 50. The first contact block 204, the second contact block 205 and the rotating block 206 are located in the placement cavity 501, and a limiting spring is provided on the side of the first contact block 204 and the second contact block 205 away from the rotating block 206, and one end of the limiting spring is connected to the wall of the placement cavity 501. When the limiting spring is turned on, the first contact block 204 and the second contact block 205 are pressed against the conducting surface 2061, and the contact 1 3011, the contact 2 4011 and the contact 3 2011 are in contact; when the limiting spring is turned off, the first contact block 204 and the second contact block 205 are pressed against the separation surface 2062, and the rotating block 206 provides movable space and force for the first contact block 204 and the second contact block 205 during rotation. The first contact block 204 and the second contact block 205 are recessed on one side away from the rotating block 206 to form a limit spring placement hole 208, and part of the limit spring is located in the limit spring placement hole 208. The function of the limit spring is to ensure that the force is provided during the rotation process so that the first contact block 204 and the second contact block 205 are always in a compressed state with the rotating block 206, thereby ensuring the stability of the three during the rotation process; at the same time, it enables the first contact block 204 and the second contact block 205 to move in the vertical direction.
[0039] In another aspect of the present invention, a sleeve housing 60 is provided at one end of the connector body 10 close to the first wiring assembly 30. An open slot 601 is formed on the sleeve housing 60. The open slot 601 is for the rotating arm of the linkage member 203 to rotate. The linkage member 203 has at least one rotating arm, and the rotating arm extends out of the open slot 601 and is connected to the sleeve housing 60.
[0040] The linkage part 203 in this embodiment includes a linkage part 203 body, a first rotating arm 2031 and a second rotating arm 2032. The first rotating arm 2031 and the second rotating arm 2032 are located in the linkage part 203 body. An opening is provided in the center of the linkage part 203 body for connecting the rotating shaft 202. The first rotating arm 2031 and the second rotating arm 2032 rotate around the center of the linkage part 203 body. The corresponding distal ends of the first rotating arm 2031 and the second rotating arm 2032 are connected to the slot 2011 formed on the inner wall surface of the rotating body 201.
[0041] The first wiring assembly 30 includes a wire introduction seat 302, a first wiring seat 303, a mounting plate 304, a terminal 305 and a guide pin 301. The wire introduction seat 302 is fixedly connected to the first wiring seat 303 and is arranged on the mounting plate 304. The wire introduction seat 302 and the first wiring seat 303 are correspondingly formed with wiring cavities for accommodating wires. The wires are connected to the terminal 305 and then connected to the guide pin 301. The first wiring assembly 30 also includes a fixing plate 306 and a connecting plate 307 for fixing the guide pin 301. The fixing plate 306 and the connecting plate 307 form mounting grooves 308 corresponding to the positions of the guide pin 301. The mounting grooves 308 are distributed at the edges of the fixing plate 306 and the connecting plate 307.
[0042] The second wiring assembly 40 includes a guide pin base 402, a second guide pin 401, a connecting base 403, and a second wiring base 404. The second wiring base 404 is provided with a connecting terminal, which is connected to one end of the second guide pin 401. The second guide pin 401 is provided through the connecting base 403, and the connecting base 403 is connected to the second wiring base 404. The number of the second guide pin 401 and the first guide pin 301 is the same. In this embodiment, the number of the second guide pin 401 and the first guide pin 301 is four.
[0043] The connecting plate 307 forms an inner cavity 3071, and the inner cavity 3071 is provided with a lower pressure block 3072, an upper pressure block 3073 and a stabilizing block 3074 sleeved on the rotating shaft 202. The lower pressure block 3072 and the upper pressure block 3073 are arranged at both ends of the stabilizing block 3074 in the vertical direction. The upper pressure block 3073 and the lower pressure block 3072 are provided with an action spring on the side close to the wall of the inner cavity 3071. The stabilizing block 3074 rotates synchronously with the rotating shaft 202. During the rotation process, the stabilizing block 3074 and the upper pressure block 3073 and the lower pressure block 3072 always remain in a compressed state.
[0044] The first contact 204 and the second contact 205 both include a contact body 209, a protrusion 2010, and a contact three 2011 distributed on both sides of the contact body 209. The conductive surface 2061 includes a first guide surface 20611, a second guide surface 20612, and a recessed surface 20613. The recessed surface 20613 is located between the first guide surface 20611 and the second guide surface 20612. When conductive, the protrusion 2010 is located in the recessed surface 20613. The separation surface 2062 is a flange surface. When the protrusion 2010 is located on the flange surface, the contact one 3011 and the contact two 4011 are both separated from the contact three 2011.
[0045] The upper pressing block 3073 and the lower pressing block 3072 each include a pressing block body 3075 and a protruding block 3076 . The center of the side surface of the stabilizing block 3074 has a concave surface 30741 that cooperates with the protruding block 3076 .
[0046] The usage of the present invention is as follows: the disconnected state is used as the initial state for explanation, that is, the contact 1 3011 and the contact 2 4011 are separated from the contact 3 2011, at which time the protrusions 2010 of the first contact 204 and the second contact 205 are in contact with the flange surface, and the distance from the flange surface to the center of the rotating block 206 is recorded as D1; when a conduction operation is required, the rotating body 201 is rotated in the first direction outside the connector body 10, and the rotating body 201 is linked to the first rotating arm 2031 and the second rotating arm 2032 of the linkage member 203, so the two move synchronously. During the rotation process, the first rotating arm 2032 and the second rotating arm 2032 rotate in the open slot 601 of the sleeve housing 60, and the size of the open slot 601 directly determines the rotation angle of the rotating arm, and in this embodiment, the rotation The angle is 90°; at this time, the rotating block 206 rotates synchronously under the action of the rotating shaft 202. At this time, the protrusion 2010 of the first contact block 204 and the second contact block 205 only moves in the vertical direction under the limit spring, and does not move axially. The flange surface is an arc surface, and the friction between the protrusion 2010 and the flange surface is small. When the flange surface is separated from the protrusion 2010, the first guide surface 20611 contacts the protrusion 2010 until the protrusion 2010 enters the recessed surface 20613. At this time, the distance between the recessed surface 20613 and the center of the rotating block 206 is D2. The value of D2 is less than the value of D1, and the difference between D2-D1 should be able to ensure that contact one 3011, contact two 4011 and contact three 2011 are in contact. When the protrusion 2010 enters the recessed surface 20613, the connector is turned on. When disconnection is required, the rotating body 201 is rotated in the opposite direction of the first direction to achieve disconnection; Example 2
[0047] like Figure 12-15 As shown, the difference between this embodiment and embodiment 2 is that the rotating block in this embodiment is different from that in embodiment 1. The rotating block 206 in this embodiment is evenly distributed with extension arms 70, and a touch plate groove 701 is formed on the extension arm. A touch plate 80 is provided in the touch plate groove. The touch plate serves as a conducting part, and a contact four 801 is correspondingly formed on the touch plate for conducting or separating with contact one and contact two. The angle between the extension arms is 90°, which is consistent with the rotation angle of the linkage part. During the rotation of the rotating block, contact four on the touch plate is respectively conducted or separated with contact one and contact two.
[0048] The present invention realizes the power on and off operation of the cable connector, realizes external operation, and can be realized by simply rotating the rotating body 201 and cooperating with the internal structure, which is easy to operate.
[0049] For example, certain words are used in the specification and claims to refer to specific components. Those skilled in the art should understand that hardware manufacturers may use different terms to refer to the same component. This specification and claims do not use differences in names as a way to distinguish components, but use differences in the functions of the components as the criteria for distinction. For example, "including" mentioned throughout the specification and claims is an open term, so it should be interpreted as "including but not limited to". "Approximately" means that within an acceptable error range, those skilled in the art can solve the technical problem within a certain error range and basically achieve the technical effect.
[0050] The foregoing description shows and describes several preferred embodiments of the present invention. However, as previously stated, it should be understood that the present invention is not limited to the forms disclosed herein and should not be construed as excluding other embodiments. Rather, the present invention can be used in various other combinations, modifications, and environments and can be modified within the scope of the inventions described herein by the teachings above or by techniques or knowledge in the relevant art. Modifications and variations made by those skilled in the art that do not depart from the spirit and scope of the present invention are intended to be within the scope of the appended claims.
Claims
1. A cable connector with a disconnect switch, characterized in that: The invention comprises a connector body and a separation component that cuts off the power of the connector, wherein a first wiring component and a second wiring component are formed on the connector body, and the separation component is located between the first wiring component and the second wiring component, so that the first wiring component and the second wiring component are connected or disconnected, and the separation component comprises a rotating body, a rotating shaft, and a linkage member arranged on the connector body, the first wiring component comprises a guide pin 1, and the second wiring component comprises a guide pin 2, one end of the guide pin 1 is connected to the wire, and the other end extends to one side of the separation component and forms a contact 1, one end of the guide pin 2 is connected to the wire, and the other end extends to one side of the separation component and forms a contact 2, and the rotating body comprises a rotating body, a rotating shaft, and a linkage member arranged on the connector body, the first wiring component comprises a guide pin 1, and the second wiring component comprises a guide pin 2, The body is sleeved on the connector body, the linkage member is fixedly connected to the rotating shaft, the rotating body drives the linkage member to rotate synchronously with the rotating body, one end of the rotating shaft extends to one end of the second wiring assembly, and the separation assembly also includes a rotating block arranged on the rotating shaft, and a rotating block is arranged on the rotating shaft to rotate synchronously with the rotating shaft, and the rotating block is adapted to be equipped with a conducting part so that it can realize the conduction or separation between the conducting part and the contact one and the contact two during the rotation process; the conducting part includes a first contact block and a second contact block, and a first contact block and a second contact block are arranged at both ends of the vertical direction of the rotating block, and during the rotation process, the rotating block drives the first contact block and the second contact block to move in the vertical direction, and simultaneously A conducting surface and a separating surface are formed on the rotating block, and a contact three is formed on the first contact block and the second contact block, which is connected to or separated from the contact one and the contact two. When the first contact block and the second contact block are in contact with the conducting surface, the connector is in a conducting state, and when the first contact block and the second contact block are in contact with the separating surface, the connector is in a disconnected state; a shell is provided on the outside of the first contact block, the second contact block and the rotating block, and a placement cavity is provided in the shell, and the first contact block, the second contact block and the rotating block are located in the placement cavity, wherein a limiting spring is provided on the side of the first contact block and the second contact block away from the rotating block, and one end of the limiting spring is connected to the wall of the placement cavity, and the limiting spring is in conduction , the first contact block and the second contact block are pressed against the conducting surface, and contact one, contact two and contact three are in contact; when disconnected, the limit spring first contact block and the second contact block are pressed against the separation surface, and the rotating block provides movable space and force for the first contact block and the second contact block during rotation; the linkage member includes a linkage member body, a first rotating arm and a second rotating arm, the first rotating arm and the second rotating arm are located on the linkage member body, and an opening is opened in the center of the linkage member body for connecting the rotating shaft, the first rotating arm and the second rotating arm rotate about the center of the linkage member body, and the corresponding distal ends of the first rotating arm and the second rotating arm are connected to the notch formed on the inner wall surface of the rotating body.
2. A cable connector with a disconnect switch according to claim 1, characterized in that: The rotating block is evenly distributed with extension arms, and a touch plate groove is formed on the extension arm. A touch plate is provided in the touch plate groove as a conducting part, and a contact point four is correspondingly formed on the touch plate to be connected to or separated from the contact point one and the contact point two.
3. A cable connector with a disconnect switch according to claim 2, characterized in that: The first contact block and the second contact block are recessed on one side away from the rotating block to form a limit spring placement hole, and a portion of the limit spring is located in the limit spring placement hole.
4. A cable connector with a disconnect switch according to claim 2 or 3, characterized in that: A sleeve housing is provided at one end of the connector body close to the first wiring assembly. An open slot is formed on the sleeve housing. The open slot is used for the rotation arm of the linkage member to rotate. The linkage member has at least one rotation arm.
5. The cable connector with a disconnect switch according to claim 1, characterized in that: The first wiring assembly includes a wire introduction seat, a first wiring seat, a mounting plate, a terminal post and a guide pin 1. The wire introduction seat is fixedly connected to the first wiring seat and is arranged on the mounting plate. The wire introduction seat and the first wiring seat are correspondingly formed with wiring cavities for accommodating wires. The wires are connected to the terminal post and then connected to the guide pin 1. The first wiring assembly also includes a fixing plate and a connecting plate for fixing the guide pin 1. The fixing plate and the connecting plate form mounting grooves corresponding to the positions of the guide pin 1, and the mounting grooves are distributed at the edges of the fixing plate and the connecting plate.
6. The cable connector with a disconnect switch according to claim 1, characterized in that: The second wiring assembly includes a guide pin seat, a second guide pin, a connecting seat and a second wiring seat. The second wiring seat is provided with a connecting terminal, which is connected to one end of the second guide pin. The second guide pin passes through the connecting seat, and the connecting seat is connected to the second wiring seat.
7. The cable connector with a disconnect switch according to claim 5, characterized in that: The connecting plate forms an inner cavity, in which a lower pressure block, an upper pressure block and a stabilizing block sleeved on the rotating shaft are arranged. The lower pressure block and the upper pressure block are arranged at both ends of the stabilizing block in the vertical direction. The upper pressure block and the lower pressure block are provided with an action spring on the side close to the inner cavity wall. The stabilizing block rotates synchronously with the rotating shaft. During the rotation process, the stabilizing block and the upper pressure block and the lower pressure block always remain in a compressed state.
Citation Information
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A cable connector capable of automatic power-off and pluggable
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Cable connector capable of automatically performing power-off inserting and drawing
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