A wire clamping terminal and a conductive device

By designing a clamping terminal that links the rotating wrench and the spring, the problem of force attenuation during the transmission of force through multiple components in existing spring-type terminals is solved, achieving the effects of structural simplification and labor saving, and improving reliability and lifespan.

CN224582515UActive Publication Date: 2026-07-31NINGBO GAOSONG NEW ENERGY TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
NINGBO GAOSONG NEW ENERGY TECH CO LTD
Filing Date
2025-07-02
Publication Date
2026-07-31

AI Technical Summary

Technical Problem

In the process of transmitting force through multiple components, the force of existing spring-type terminals will be greatly attenuated, which means that operators need to use tools to apply a large force to change the compression spring from a free state to a compressed state.

Method used

A wire clamping terminal was designed. By setting a linkage structure between a rotating wrench and a spring, the rotating wrench drives the clamping actuator to form a wire receiving space, and the spring drives the rotating wrench to rotate so that the clamping actuator clamps the wire. This simplifies the structure, reduces the number of parts, and improves reliability and service life.

Benefits of technology

The overall structure is simplified, force attenuation is reduced, operators can operate it by hand, eliminating the need for tools, extending service life, and achieving a labor-saving effect through the lever principle.

✦ Generated by Eureka AI based on patent content.

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Abstract

This utility model relates to the field of connector technology, specifically to a wire clamping terminal and a conductive device. A wire clamping terminal includes: a rotary wrench, suitable for partial placement within a housing, including a rotating end and a force-receiving end, the rotating end being rotatably connected to the housing; and a spring piece, suitable for placement within the housing, the spring piece having a clamping actuator having an open state and a clamping state. When switching from the clamping state to the open state, the force-receiving end of the rotary wrench is driven to rotate, causing the clamping actuator to form a wire accommodating space with the inner wall of the housing; when switching from the open state to the clamping state, the spring piece drives the rotary wrench to rotate, causing the clamping actuator to cooperate with the inner wall of the housing to form a wire clamping structure. This utility model provides a wire clamping terminal and a conductive device to solve the problem in the use of spring-type terminals where the force attenuates significantly during the transmission of force among multiple components, requiring the application of a large force with a tool to change the compression spring from a free state to a compressed state.
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Description

Technical Field

[0001] This utility model relates to the field of connector technology, specifically to a wire clamp terminal and a conductive device. Background Technology

[0002] In existing spring-type terminals, the compression spring often needs to switch between a free state and a compressed state. During the process of changing from a free state to a compressed state, other components in the terminal are needed to compress the compression spring. The number of other components (excluding the compression spring) is often two or more. Since there will be a large force attenuation during the transmission of force by multiple components, the operator needs to use tools to apply a large force to change the compression spring from a free state to a compressed state. Utility Model Content

[0003] In view of this, the present invention provides a clamping terminal and a conductive device to solve the problem that in the process of force transmission among multiple components in the use of existing spring-type terminals, the force will be greatly attenuated, which requires the operator to use tools to apply a large force to change the compression spring from a free state to a compressed state.

[0004] In a first aspect, this utility model provides a wire clamping terminal, comprising:

[0005] A rotary wrench, wherein the rotary wrench is adapted to be partially disposed within a housing, the rotary wrench includes a rotating end and a force-receiving end, the rotating end being disposed within the housing and rotatably connected to the housing, and the force-receiving end extending outside the housing;

[0006] A spring sheet is adapted to be disposed within the housing. The rotating wrench is linked to the spring sheet. The spring sheet is provided with a clamping actuator, which has an open state and a clamping state. When the clamping actuator switches from the clamping state to the open state, the force-receiving end of the rotating wrench is driven to rotate in a first direction around the rotating end, causing the clamping actuator and the inner wall of the housing to form a wire receiving space. When the clamping actuator switches from the open state to the clamping state, the spring sheet drives the rotating wrench to rotate in a second direction around the rotating end. The first direction and the second direction are opposite, so that the clamping actuator and the inner wall of the housing form a wire clamping structure.

[0007] By incorporating a rotary wrench, the wrench alone drives the clamping actuator to form a wire-accommodating space, and the spring plate drives the rotary wrench to rotate, causing the clamping actuator to clamp the wire. This achieves the reciprocating motion of the rotary wrench. The wrench and spring plate are the only components required for both loosening and clamping, simplifying the overall structure, improving reliability during use, and extending service life. Compared to existing structures, the force attenuation is smaller, resulting in a labor-saving effect.

[0008] In one alternative implementation, the first direction is counterclockwise and the second direction is clockwise; or, the first direction is clockwise and the second direction is counterclockwise.

[0009] In one alternative embodiment, the rotary wrench is an S-shaped wrench, one end of which is configured as the rotary end, and the other end of which extends out of the housing to form the force-bearing end.

[0010] In one optional embodiment, the spring is provided with a locking tongue and a pulling rod. The two ends of the pulling rod are respectively connected to the locking tongue and the clamping actuator. The locking tongue abuts against the first side of the body of the rotary wrench. When the clamping actuator switches from the clamping state to the releasing state, the first side of the body acts on the locking tongue to drive the pulling rod to move away from the clamping actuator.

[0011] In one optional embodiment, the spring sheet further includes an abutment portion located between the locking tongue and the clamping actuation portion. One end of the abutment portion is fixedly connected to the housing. The locking tongue, the abutment portion, and the pulling rod form an enclosing space. The body extends through the enclosing space, and a dynamic adjustment gap is provided between the pulling rod and the abutment portion.

[0012] In one optional embodiment, the spring sheet further includes a U-shaped return section and a guide section. One end of the return section is connected to the clamping actuator, and the other end of the return section is connected to the abutment. One end of the guide section is connected to the locking tongue, and the guide section and the locking tongue are arranged at an angle.

[0013] In an optional embodiment, a fluid carrier is further included. The fluid carrier is disposed within the housing. The fluid carrier includes a first side plate and a second side plate. A rotating shaft is provided on the first side plate of the fluid carrier. A through hole is provided on the rotating end. The rotating shaft is adapted to the through hole. When the clamping actuator is in the released state, a wire receiving space is formed between the clamping actuator and the inner wall of the second side plate of the fluid carrier. The first side plate and the second side plate are perpendicularly connected.

[0014] In one optional embodiment, a trigger body is further included. The trigger body is disposed within the housing. The trigger body includes a movable trigger plate and a movable locking tongue plate. The movable trigger plate is connected to the movable locking tongue plate and is perpendicular to the movable locking tongue plate. The fluid carrier includes a third side plate. The movable locking tongue plate is parallel to the third side plate of the fluid carrier. The third side plate is located between the rotary wrench and the movable locking tongue plate. The third side plate is parallel to the second side plate and is connected to the first side plate. In the loosened state, the locking hole of the locking tongue is moved to the movable locking tongue plate by the rotary wrench, so that the movable locking tongue plate is inserted into the locking hole.

[0015] In one optional embodiment, the trigger body further includes a fixed end, which is fixedly connected to the housing. The movable latch plate is provided with a U-shaped space. One end of the fixed end is connected to the movable trigger plate, and the other end of the fixed end passes through the U-shaped space and extends out in a direction away from the movable trigger plate before being fixedly connected to the housing.

[0016] Secondly, the present invention also provides a conductive device, including a housing and the aforementioned clamping terminal, a portion of which is disposed within the housing. Attached Figure Description

[0017] To more clearly illustrate the specific embodiments of this utility model or the technical solutions in the prior art, the drawings used in the description of the specific embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of this utility model. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.

[0018] Figure 1 This is a schematic diagram of the driving body and the clamping terminal according to an embodiment of the present utility model;

[0019] Figure 2 This is a schematic diagram of the clamping terminal in the clamped state according to an embodiment of the present invention;

[0020] Figure 3 This is a schematic diagram illustrating the interaction between the spring and the rotating wrench in an embodiment of the present invention.

[0021] Figure 4 This is a schematic diagram of the rotating wrench according to an embodiment of the present utility model;

[0022] Figure 5 This is a schematic diagram of the spring sheet according to an embodiment of the present utility model;

[0023] Figure 6 This is a schematic diagram of the spring sheet from another angle according to an embodiment of the present invention;

[0024] Figure 7 This is a schematic diagram illustrating the interaction between the fluid carrier and the trigger body in an embodiment of this utility model.

[0025] Figure 8 This is a schematic diagram of the fluid-carrying agent according to an embodiment of the present invention;

[0026] Figure 9 This is a schematic diagram of the trigger body according to an embodiment of the present invention;

[0027] Figure 10 This is a schematic diagram of the wire clamp terminal in the loosened state according to an embodiment of the present invention.

[0028] Explanation of reference numerals in the attached drawings: 1. Rotating wrench; 101. Force-bearing end; 102. Rotating end; 103. Body; 1031. First side surface; 1032. Second side surface; 104. Through hole; 2. Spring piece; 201. Clamping and actuating part; 202. Return section; 203. Pulling rod; 204. Abutting part; 2041. Second abutting surface; 205. Locking tongue part; 2051. First abutting surface; 206. Locking hole ; 207. Enclosed space; 208. Guide section; 3. Fluid carrier; 301. First side plate; 302. Second side plate; 303. Third side plate; 304. Rotating shaft; 305. Support base plate; 306. Suspended space; 4. Trigger; 401. Movable locking tongue plate; 402. Movable trigger plate; 403. Fixed end; 404. U-shaped space; 5. Driving body; 6. First direction; 7. Wire. Detailed Implementation

[0029] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this utility model, not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of this utility model.

[0030] The following is combined with Figures 1 to 9 The following describes embodiments of the present invention.

[0031] According to an embodiment of the present invention, a wire clamping terminal is provided, comprising:

[0032] Rotary wrench 1 is adapted to be partially located inside the housing. Rotary wrench 1 includes a rotating end 102 and a force-receiving end 101. The rotating end 102 is located inside the housing and is rotatably connected to the housing. The force-receiving end 101 extends out of the housing.

[0033] The spring 2 is suitable for being installed inside the housing. The rotating wrench 1 is linked to the spring 2. The spring 2 is provided with a clamping actuator 201, which has an open state and a clamping state. When the clamping actuator 201 switches from the clamping state to the open state, the force-receiving end 101 of the rotating wrench 1 is driven to rotate in the first direction 6 around the rotating end 102, causing the clamping actuator 201 and the side wall of the housing to form a wire receiving space. When the clamping actuator 201 switches from the open state to the clamping state, the clamping actuator 201 drives the rotating wrench 1 to rotate in the second direction around the rotating end 102. The first direction 6 and the second direction are opposite, so that the clamping actuator 201 and the inner wall of the housing form a wire clamping structure.

[0034] By setting a rotary wrench 1, the rotary wrench 1 drives the clamping actuator 201 to form a wire receiving space for accommodating the wire, and the spring piece 2 drives the rotary wrench 1 to rotate so that the clamping actuator 201 clamps the wire. This realizes the reciprocating motion of the rotary wrench 1. Only the rotary wrench 1 and the spring piece 2 are needed to achieve the loosening and clamping functions. No other parts are required, which simplifies the overall structure, improves the reliability in use, extends the service life, and has less force attenuation compared to the existing structure, thus saving effort.

[0035] In one embodiment, such as Figure 1 As shown, the first direction 6 is counterclockwise, and the second direction is clockwise. By using the first direction 6 and the second direction in opposite directions, the reciprocating motion of the wrench 1 is achieved.

[0036] In one embodiment, such as Figure 1 , Figure 2 , Figure 3 and Figure 4 As shown, the rotary wrench 1 is an "S"-shaped wrench. One end of the S-shaped wrench is configured as the rotating end 102, and the other end extends out of the housing to form the force-receiving end 101. This allows the clamping actuator 201 to move only by rotating the wrench 1, so that the spring 2 only needs to move along the curved part of the S-shaped wrench. This reduces the movement distance of the clamping actuator 201, saves internal space of the housing, and achieves a compact design. In addition, the lever arm of the rotary wrench 1 is relatively long, and the rotation is driven by a lever principle without requiring a large force, thus achieving a labor-saving effect.

[0037] In one embodiment, such as Figure 3 , Figure 5 and Figure 6As shown, the spring 2 has a locking tongue 205 and a pulling rod 203. The two ends of the pulling rod 203 are connected to the locking tongue 205 and the clamping actuator 201, respectively. The locking tongue 205 abuts against the first side 1031 of the main body 103 of the rotary wrench 1. When the clamping actuator 201 switches from a clamping state to a releasing state, the first side 1031 of the main body 103 acts on the locking tongue 205, causing the pulling rod 203 to move away from the clamping actuator 201, thus creating a wire-accommodating space between the clamping actuator 201 and the side wall of the housing. It should be noted that one end of the pulling rod 203 is connected to the clamping actuator 201, and the other end is connected to the locking tongue 205.

[0038] In one embodiment, such as Figure 2 , Figure 3 , Figure 4 , Figure 5 and Figure 6 As shown, the spring 2 also includes an abutment portion 204, which is located between the locking tongue portion 205 and the clamping execution portion 201. One end of the abutment portion 204 is fixedly connected to the housing. The locking tongue portion 205, the abutment portion 204, and the pulling rod 203 form an enclosing space 207. The body 103 is disposed through the enclosing space 207, and a dynamic adjustment gap is left between the pulling rod 203 and the abutment portion 204. By providing the enclosing space 207, the body 103 passes through the enclosing space 207 so that when switching from the clamping state to the loosening state, the first side 1031 of the body 103 drives the clamping execution portion 201 to move towards the abutment portion 204; when switching from the loosening state to the clamping state, the clamping execution portion 201 drives the locking tongue portion 205 via the pulling rod 203, and then the locking tongue portion 205 drives the body 103 to move away from the abutment portion 204. It should be noted that the abutment portion 204 is subject to fixed constraints. The first abutment surface 2051 is in linear contact with the first side surface 1031 of the body 103, and the second abutment surface 2041 is an arc-shaped surface. Furthermore, the arc shape of the second abutment surface 2041 is the same as the arc shape of the second side surface 1032 of the body 103, thus ensuring that the abutment portion 204 is adapted to the body 103. Figure 5 , Figure 6 As shown, there are two pull rods 203, and an abutment part 204 is provided between the two pull rods 203. The abutment part 204 is not connected to the pull rod 203, and there is a gap between them to avoid the abutment part 204 interfering with the movement of the pull rod 203.

[0039] In one embodiment, such as Figure 2 , Figure 3 , Figure 4 , Figure 5 and Figure 6As shown, the spring 2 also includes a U-shaped return section 202 and a guide section 208. One end of the return section 202 is connected to the clamping actuator 201, and the other end is connected to the abutment part 204. One end of the guide section 208 is connected to the locking tongue part 205, and the guide section 208 and the locking tongue part 205 are set at an angle. Specifically, the return section 202 is made of a metal elastic material, and the rotary wrench 1 is made of an insulating material. The return section 202 provides a restoring force; that is, in the loose state, the return section 202 changes from a free state without force to a compressed state; in the clamping state, the return section 202 provides a restoring force, causing the clamping actuator 201 to drive the pulling rod 203, and the pulling rod 203 to drive the locking tongue part 205 to move towards the abutment part 204, and the return section 202 changes from a compressed state to a free state. It should be noted that the direction in which the return section 202 drives the clamping actuator 201 to move is the same as the second direction, so as to facilitate user identification and bring great convenience to use.

[0040] In one embodiment, such as Figure 1 , Figure 2 , Figure 7 and Figure 8 As shown, it also includes a fluid carrier 3, which is disposed inside the housing. The fluid carrier 3 includes a first side plate 301 and a second side plate 302. The first side plate 301 of the fluid carrier 3 is provided with a rotating shaft 304, and the rotating end 102 is provided with a through hole 104. The rotating shaft 304 is adapted to the through hole 104. When the clamping actuator 201 is in the released state, it forms a receiving space with the inner side wall of the second side plate 302 of the fluid carrier 3. The first side plate 301 and the second side plate 302 are arranged perpendicularly and are perpendicularly connected. Specifically, the fluid carrier 3 is made of a conductive metal material (such as copper, aluminum, silver, etc.). In the released state, the clamping actuator 201 and the inner wall of the second side plate 302 of the fluid carrier 3 form a wire receiving space, allowing the wire 7 to enter into the wire receiving space. In the clamped state, the clamping actuator 201 moves toward the second side plate 302 of the fluid carrier 3, and the clamping actuator 201 and the second side plate 302 work together to clamp the wire 7, with the clamping force provided by the return section 202. To prevent the abutment part 204 from moving arbitrarily, the fluid carrier 3 and the abutment part 204 are fixedly connected to prevent the abutment part 204 from moving arbitrarily.

[0041] In this embodiment, as Figure 7 , Figure 8 As shown, the fluid carrier 3 also includes a support base plate 305, which is fixedly connected to the second side plate 302. The support base plate 305 and the second side plate 302 are arranged perpendicularly. In addition, the first side plate 301 is not connected to the support base plate 305, and a suspended space 306 is formed between the first side plate 301 and the support base plate 305.

[0042] In one embodiment, such as Figure 1 , Figure 2 , Figure 7 , Figure 9 and Figure 10 As shown, it also includes a trigger body 4, which is disposed inside the housing. The trigger body 4 includes a movable trigger plate 402 and a movable locking tongue plate 401. The movable trigger plate 402 is connected to the movable locking tongue plate 401 and is arranged perpendicularly to the movable locking tongue plate 401. The fluid carrier 3 includes a third side plate 303. The movable locking tongue plate 401 is arranged parallel to the third side plate 303 of the fluid carrier 3. The third side plate 303 is located between the rotating wrench 1 and the movable locking tongue plate 401. The third side plate 303 is arranged parallel to the second side plate 302 and is connected to the first side plate 301. When the locking tongue part 205 is in the loosened state, the locking hole 206 is moved to the movable locking tongue plate 401 by the rotating wrench 1 so that the movable locking tongue plate 401 is inserted into the locking hole 206. By setting a movable trigger plate 402 and a movable locking tongue plate 401, the movable locking tongue plate 401 locks the locking hole 206 of the locking tongue part 205. After the movable trigger plate 402 is subjected to the force of the end of the wire 7, it drives the movable locking tongue plate 401 to separate from the locking hole 206, and the return section 202 drives the clamping execution part 201 to move toward the second side plate 302. It should be noted that the movable trigger plate 402 is located in the suspended space 306. The movable locking tongue plate 401 and the movable trigger plate 402 are set vertically to form an "L" shape. The length of the movable trigger plate 402 is greater than that of the movable locking tongue plate 401, which makes the lever arm of the movable trigger plate 402 longer. By utilizing the lever principle, even if the diameter of the wire 7 in contact with the movable trigger plate 402 is small and a small force is applied, the movable locking tongue plate 401 will be driven to separate from the locking hole 206 through the lever principle because the lever arm of the movable trigger plate 402 is longer. This has the advantage of saving effort.

[0043] In one embodiment, such as Figure 1 , Figure 2 , Figure 7 and Figure 9 As shown, the trigger body 4 also includes a fixed end 403, which is fixedly connected to the housing. The movable latch plate 401 has a U-shaped space 404. One end of the fixed end 403 is fixedly connected to the movable trigger plate 402, and the other end of the fixed end 403 extends through the U-shaped space 404 and outwards in a direction away from the movable trigger plate 402, and is fixedly connected to the housing. The fixed end 403 serves to fix the trigger body 4. It should be noted that the trigger body 4 is made of insulating material, and the movable latch plate 401 is fitted against the third side plate 303, that is, the movable latch plate 401 can move relative to the third side plate 303.

[0044] In this embodiment, as Figure 1 , Figure 2 , Figure 5, Figure 6 As shown, the guide section 208 is warped, with the warping direction opposite to that of the movable locking tongue plate 401. The guide section 208 serves a guiding function; when switching from the clamped state to the released state, the movable locking tongue plate 401 first contacts the guide section 208, and under the guidance of the guide section 208, the movable locking tongue plate 401 enters the locking hole 206 to lock the spring piece 2. Figure 7 , Figure 9 As shown, the fixed end 403 of the trigger body 4 is fixedly connected to the housing. When switching from the loose state to the clamped state, the movable trigger plate 402 moves downward under force. Since the fixed end 403 is fixed, it will drive the movable locking tongue plate 401 to move downward, causing the movable locking tongue plate 401 to separate from the locking hole 206.

[0045] A conductive device includes the aforementioned clamping terminal and a housing, wherein a spring 2, a trigger 4, and a current carrier 3 are respectively disposed within the housing, and the force-receiving end 101 of a rotating wrench 1 extends outside the housing. Figure 1 As shown, the force-receiving end 101 of the rotating wrench 1 is subjected to the force of the driving body 5. The driving body 5 can be a person's finger or a tool, and this embodiment does not make any specific limitation.

[0046] A method for using a wire clamp terminal, having a loosened state and a clamped state, includes the following steps:

[0047] (1) When switching from the clamping state to the loosening state, the driving body 5 applies force to the force-receiving end 101 of the rotating wrench 1, causing the rotating wrench 1 to rotate in the first direction 6 with the rotating end 102 as the center. The rotation of the rotating wrench 1 drives the locking tongue 205 with the first contact surface 2051 to move away from the clamping execution part 201. The locking tongue 205 drives the clamping execution part 201 to move away from the second side plate 302 through the pulling rod 203, so that a receiving space is formed between the clamping execution part 201 and the second side plate 302 until the locking hole 206 of the locking tongue 205 moves to connect with the movable locking tongue plate 401, the force applied by the driving body 5 is canceled, and the return section 202 changes from a free state to a compressed state.

[0048] (2) When switching from the loose state to the clamping state, the wire 7 extends from the outside of the housing into the inside of the housing and enters the receiving space. The end of the wire 7 will contact the movable trigger plate 402 to apply a force to the movable trigger plate 402 toward the supporting base plate 305. The movable trigger plate 402 drives the movable locking tongue plate 401 to separate from the locking hole 206 through the lever principle. The return section 202 changes from the compressed state to the free state. The return section 202 provides the return force to drive the clamping execution part 201 to move toward the second side plate 302. The clamping execution part 201 drives the locking tongue part 205 through the pulling rod 203. The locking tongue part 205 drives the rotating wrench 1 to rotate in the second direction until the clamping execution part 201 and the second side plate 302 clamp the wire 7, realizing the electrical connection between the current of the current carrier 3 and the wire 7.

[0049] The clamping terminal provided by this utility model has the following advantages: (1) The overall structure is simpler. By rotating the wrench 1, the force is transmitted. Compared with the existing structure, the force attenuation is smaller, which is more efficient and extends the service life. (2) The force attenuation is smaller. During the wiring process, the operator can operate the rotating wrench 1 by hand without the need for tools (such as screwdrivers), which has the advantage of simple operation. (3) When the end of the wire 7 contacts the movable trigger plate 402, by using the lever principle, even if the diameter of the wire 7 in contact with the movable trigger plate 402 is small and a small force is applied, the movable trigger plate 402 will be driven to separate from the locking hole 206 by lever principle due to the long lever arm of the movable trigger plate 402, which has the advantage of saving effort. (4) The direction of the movement of the clamping execution part 201 driven by the return section 202 is the same as the second direction, which makes it easier for the user to identify and brings great convenience to the use.

[0050] As an alternative implementation, the first direction 6 is clockwise and the second direction is counterclockwise.

[0051] As an alternative implementation, the spring 2 may not have a locking tongue 205. Instead, the locking tongue 205 is fixedly connected to the rotating wrench 1, and the spring 2 is fixedly connected to the pulling rod 203. That is, the clamping actuator 201 is moved by rotating the wrench 1, and then the locking tongue 205 is moved by rotating the wrench 1.

[0052] Although embodiments of the present invention have been described in conjunction with the accompanying drawings, those skilled in the art can make various modifications and variations without departing from the spirit and scope of the present invention, and such modifications and variations all fall within the scope defined by the appended claims.

Claims

1. A crimp terminal characterized by comprising: include: A rotating wrench (1) is adapted to be partially disposed inside the housing. The rotating wrench (1) includes a rotating end (102) and a force-receiving end (101). The rotating end (102) is disposed inside the housing and is rotatably connected to the housing. The force-receiving end (101) extends out of the housing. A spring (2) is adapted to be disposed inside the housing. The rotating wrench (1) is linked to the spring (2). The spring (2) is provided with a clamping execution part (201). The clamping execution part (201) has an open state and a clamping state. When the clamping execution part (201) switches from the clamping state to the open state, the force-receiving end (101) of the rotating wrench (1) is driven to rotate in a first direction (6) with the rotating end (102) as the center, causing the clamping execution part (201) and the inner wall of the housing to form a wire receiving space. When the clamping execution part (201) switches from the open state to the clamping state, the spring (2) drives the rotating wrench (1) to rotate in a second direction with the rotating end (102) as the center. The first direction (6) and the second direction are opposite, so that the clamping execution part (201) and the inner wall of the housing form a wire clamping structure.

2. The clamped wire terminal of claim 1, wherein, The first direction (6) is counterclockwise and the second direction is clockwise; or, the first direction (6) is clockwise and the second direction is counterclockwise.

3. The clamped wire terminal of claim 1, wherein, The rotating wrench (1) is an S-shaped wrench, one end of which is configured as the rotating end (102), and the other end of which extends out of the housing to form the force-bearing end (101).

4. The clamped wire terminal of claim 3, wherein, The spring (2) is provided with a locking tongue (205) and a pulling rod (203). The two ends of the pulling rod (203) are respectively connected to the locking tongue (205) and the clamping execution part (201). The locking tongue (205) abuts against the first side (1031) of the body (103) of the rotary wrench (1). When the clamping execution part (201) switches from the clamping state to the loosening state, the first side (1031) of the body (103) acts on the locking tongue (205) to drive the pulling rod (203) to move away from the clamping execution part (201).

5. The clamped wire terminal of claim 4, wherein, The spring (2) also includes an abutment part (204), which is located between the locking tongue part (205) and the clamping execution part (201). One end of the abutment part (204) is fixedly connected to the housing. The locking tongue part (205), the abutment part (204) and the pulling rod (203) form an enclosing space (207). The body (103) is disposed through the enclosing space (207). A dynamic adjustment gap is left between the pulling rod (203) and the abutment part (204).

6. The clamped wire terminal of claim 5, wherein, The spring (2) further includes a U-shaped return section (202) and a guide section (208). One end of the return section (202) is connected to the clamping execution part (201), and the other end of the return section (202) is connected to the abutment part (204). One end of the guide section (208) is connected to the locking tongue part (205), and the guide section (208) and the locking tongue part (205) are arranged at an angle.

7. The clamped wire terminal of claim 5, wherein, It also includes a fluid carrier (3), which is disposed inside the housing. The fluid carrier (3) includes a first side plate (301) and a second side plate (302). The first side plate (301) of the fluid carrier (3) is provided with a rotating shaft (304). The rotating end (102) is provided with a through hole (104). The rotating shaft (304) is adapted to the through hole (104). When the clamping actuator (201) is in the released state, it forms a wire receiving space with the inner wall of the second side plate (302) of the fluid carrier (3). The first side plate (301) and the second side plate (302) are perpendicularly connected.

8. The clamped wire terminal of claim 7, wherein, It also includes a trigger body (4), which is disposed inside the housing. The trigger body (4) includes a movable trigger plate (402) and a movable locking tongue plate (401). The movable trigger plate (402) is connected to the movable locking tongue plate (401). The movable trigger plate (402) and the movable locking tongue plate (401) are arranged perpendicularly. The fluid carrier (3) includes a third side plate (303). The movable locking tongue plate (401) and the third side plate (303) of the fluid carrier (3) are connected. The third side plate (303) is arranged in parallel with the second side plate (302) and is located between the rotating wrench (1) and the movable locking tongue plate (401). The third side plate (303) is arranged in parallel with the second side plate (302) and is connected to the first side plate (301). The locking hole (206) of the locking tongue part (205) is moved to the movable locking tongue plate (401) by the rotating wrench (1) in the loosened state so that the movable locking tongue plate (401) is inserted into the locking hole (206).

9. The clamped wire terminal of claim 8, wherein, The trigger body (4) also includes a fixed end (403), which is fixedly connected to the housing. The movable locking tongue plate (401) is provided with a U-shaped space (404). One end of the fixed end (403) is connected to the movable trigger plate (402), and the other end of the fixed end (403) passes through the U-shaped space (404) and extends out in a direction away from the movable trigger plate (402) before being fixedly connected to the housing.

10. An electrically conductive device comprising a housing, characterized in that Includes the wire clamping terminal as described in any one of claims 1-9, a portion of which is disposed within the housing.