Conductive wiring structure and electric equipment with same

By using locking components and stop designs in the conductive wiring structure, the problem of inconvenient assembly and disassembly of the terminal block assembly is solved, enabling fast and reliable assembly and disassembly of the terminal block.

CN121367098APending Publication Date: 2026-01-20GREE ELECTRIC APPLIANCE INC OF ZHUHAI
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Patent Information

Application Number
CN202511437731.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-10-09
Publication Date
2026-01-20

AI Technical Summary

Technical Problem

The existing terminal block assembly is cumbersome to assemble and disassemble, requiring manual turning of the screws multiple times.

Method used

It adopts a conductive wiring structure, including a terminal assembly, a locking component, and a fixing component. It can quickly lock and unlock by pressing the locking component, and can quickly assemble and disassemble the terminal assembly by using the cooperation of the stop and the guide groove.

Benefits of technology

It enables quick installation and removal of the terminal block assembly, avoiding loosening and detachment caused by threaded connections, and is suitable for vibration environments.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a conductive wiring structure and electric equipment with the conductive wiring structure, the conductive wiring structure comprises a binding post assembly, a locking part and a fixing part, the locking part is installed in the fixing part, the binding post assembly is detachably inserted into the fixing part, and the binding post assembly is detachably inserted into the fixing part. The locking component has a locking state for locking the binding post assembly and an unlocking state for unlocking the binding post assembly, the locking component is in the locking state after the binding post assembly is pressed down for the first time relative to the fixing component, and the locking component is in the unlocking state after the binding post assembly is pressed down for the second time relative to the fixing component. According to the invention, after the binding post assembly is pressed twice relative to the fixed part, the binding post assembly can be locked and unlocked by the locking part, so that the binding post assembly can be quickly assembled with the fixed part or quickly disassembled from the fixed part. The binding post assembly provided by the invention can be quickly mounted and dismounted.
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Description

TECHNICAL FIELD

[0001] The present application belongs to the technical field of electric equipment, and particularly relates to a conductive wiring structure and an electric equipment with the same. BACKGROUND

[0002] The wiring post assembly is a common circuit switching device, which is used for connecting wires with wires or wires with other elements. The existing wiring post assembly is usually assembled and disassembled by screwing, which needs to be screwed manually for many turns, so that the assembly and disassembly of the wiring post assembly are still troublesome. SUMMARY

[0003] Therefore, the present application provides a conductive wiring structure, which can solve the technical problem that the existing wiring post assembly is troublesome in assembly and disassembly.

[0004] In order to solve the above problems, the present application provides a conductive wiring structure, which comprises a wiring post assembly, a locking component and a fixing component, the locking component is installed in the fixing component, the wiring post assembly is detachably inserted into the fixing component, the locking component has a locking state in which the wiring post assembly is locked and an unlocking state in which the wiring post assembly is unlocked, after the wiring post assembly is pressed for the first time relative to the fixing component, the locking component is in the locking state, after the wiring post assembly is pressed for the second time relative to the fixing component, the locking component is in the unlocking state.

[0005] In some embodiments, the locking component comprises a locking sleeve and a stop body formed on the inner circumferential wall of the locking sleeve, the wiring post assembly comprises a wiring post and an insulating component, the insulating component comprises an insulating sleeve and a stop matching body formed on the outer circumferential wall of the insulating sleeve, the insulating sleeve is fixedly sleeved on the wiring post, the insulating component is detachably inserted into the fixing component, and the insulating sleeve passes through the locking sleeve in the axial direction, the stop body has a stop position for stopping the stop matching body and a avoiding position for releasing the stop of the stop matching body, when the stop body is in the stop position, the locking component is in the locking state, when the stop body is in the avoiding position, the locking component is in the unlocking state.

[0006] In some embodiments, the fixing component has a first cavity, the locking component is rotatably arranged in the first cavity, after the wiring post assembly is pressed twice relative to the fixing component, the locking sleeve can be driven to rotate to drive the stop body to switch between the stop position and the avoiding position.

[0007] In some embodiments, a sliding component is connected to the insulating sleeve, a first guide groove and a second guide groove are formed on the inner circumferential wall of the locking sleeve, the first guide groove extends along the axial direction of the locking sleeve, and the first guide groove extends to the end of the locking sleeve in a direction away from the stop body, the first guide groove is connected to the second guide groove at the end close to the stop body, the second guide groove extends along the circumferential direction of the locking sleeve in a direction away from the stop body, and the locking component is driven to rotate to drive the stop body to switch to the stop position during the sliding of the sliding component from the first guide groove to the second guide groove.

[0008] In some embodiments, a third guide groove and a fourth guide groove are further formed on the inner circumferential wall of the locking sleeve, the end of the second guide groove away from the first guide groove is connected to the third guide groove, the third guide groove extends along the circumferential direction of the locking sleeve in a direction close to the stop body, the fourth guide groove extends along the axial direction of the locking sleeve, and the fourth guide groove extends to the end of the locking sleeve in a direction away from the stop body, the end of the fourth guide groove close to the stop body is connected to the end of the third guide groove away from the second guide groove, and the locking component is driven to rotate to drive the stop body to switch to the avoidance position during the sliding of the sliding component from the third guide groove to the fourth guide groove.

[0009] In some embodiments, the number of stop cooperating bodies and stop bodies is two, the two stop cooperating bodies are arranged at 180° opposite positions on the insulating sleeve, the two stop bodies are arranged at 180° opposite positions in the locking sleeve, the central angle corresponding to the first guide groove and the second guide groove is 90°, and the central angle corresponding to the third guide groove and the fourth guide groove is 90°.

[0010] In some embodiments, the fixing component further has a second chamber, the cross-sectional area of the second chamber is greater than that of the first chamber, the first chamber is in communication with the outside of the fixing component through the second chamber, the insulating component further includes an anti-rotation body formed on the outer circumferential wall of the insulating sleeve, the anti-rotation body is in the second chamber in the state that the insulating component is inserted into the fixing component, and the anti-rotation body and the second chamber cooperate to prevent the rotation of the insulating component when the locking component is driven to rotate to drive the stop body to switch between the stop position and the avoidance position.

[0011] In some embodiments, an elastic component is installed in the second chamber, and the elastic component is clamped between the anti-rotation body and the bottom of the second chamber.

[0012] In some embodiments, a detachable limiting assembly is installed in the second chamber, which limits the locking sleeve along the axial direction of the locking sleeve.

[0013] The application also provides a power-using device comprising the conductive wiring structure.

[0014] The conductive wiring structure and the power-using device having the same provided by the application have the following advantages: When the terminal post assembly is pressed for the first time relative to the fixed part, the locking part is in the locked state, so that the terminal post assembly is locked by the locking part, thereby realizing the quick assembly of the terminal post assembly, the locking part and the fixed part together; when the terminal post assembly is pressed for the second time relative to the fixed part, the locking part is in the unlocked state, so that the locking of the terminal post assembly by the locking part is released, thereby realizing the quick disassembly of the terminal post assembly from the fixed part. Compared with the prior art, the terminal post assembly of the application can realize quick installation and disassembly. BRIEF DESCRIPTION OF DRAWINGS

[0015] In order to more clearly illustrate the embodiments of the application or the technical solutions in the prior art, the following will briefly introduce the drawings needed to be used in the description of the embodiments or the prior art. Obviously, the drawings in the following description are only exemplary, and for those skilled in the art, other drawings can be derived from the provided drawings without creative labor.

[0016] Figure 1 is a sectional view of the conductive wiring structure of the embodiment of the application; Figure 2 is a structural schematic view of the insulating part of the conductive wiring structure of the embodiment of the application; Figure 3 is a sectional view of the locking part of the conductive wiring structure of the embodiment of the application; Figure 4 is a top view of the locking part of the conductive wiring structure of the embodiment of the application; Figure 5 is a sectional view of the fixed part of the conductive wiring structure of the embodiment of the application.

[0017] The signs in the drawings represent: 1, terminal post assembly; 11, terminal post; 12, insulating part; 121, insulating sleeve; 122, stop cooperating body; 123, anti-rotation body; 13, sliding part; 2, locking part; 21, locking sleeve; 22, stop body; 3, fixed part; 4, first guide groove; 5, second guide groove; 6, third guide groove; 7, fourth guide groove; 8, elastic part; 9, limiting assembly; 10, threaded hole. DETAILED DESCRIPTION

[0018] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments of the present application. The following description of at least one exemplary embodiment is merely illustrative in nature and is in no way limiting on the application or its applications or uses. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative efforts fall within the scope of the present application.

[0019] In the description of the present application, it should be understood that the orientation words such as "front, back, up, down, left, right", "transverse, vertical, perpendicular, horizontal" and "top, bottom" and the like indicate the orientation or positional relationship shown in the drawings, which are only for the purpose of facilitating the description of the present application and simplifying the description, and do not indicate or imply that the device or element referred to must have a particular orientation or be constructed and operated in a particular orientation, therefore it cannot be understood as a limitation on the scope of protection of the present application; the orientation words "inner, outer" refer to the inner and outer of the contour of each component itself.

[0020] For the convenience of description, spatial relative terms such as "over", "above", "upper surface", "upper" and the like can be used herein to describe the spatial positional relationship of one device or feature with respect to other devices or features as shown in the drawings. It should be understood that the spatial relative terms are intended to include different orientations in use or operation in addition to the orientation of the device described in the drawings. For example, if the device in the drawings is inverted, the device described as "above" or "over" other devices or structures will be positioned "below" or "under" other devices or structures. Thus, the exemplary term "above" can include both "above" and "below" orientations. The device can also be positioned in other different ways (rotated 90 degrees or in other orientations), and the spatial relative descriptions used herein are interpreted accordingly.

[0021] In addition, it should be noted that the use of "first", "second" and the like to define parts is only for the convenience of distinguishing the corresponding parts, and the above words have no special meaning unless otherwise stated, and therefore cannot be understood as a limitation on the scope of protection of the present application.

[0022] For reference Figures 1 to 5As shown, according to the embodiment of the present application, a conductive wiring structure is provided, comprising a terminal post assembly 1, a locking component 2 and a fixing component 3, the locking component 2 is installed in the fixing component 3, the terminal post assembly 1 is detachably inserted into the fixing component 3, the locking component 2 has a locking state in which the terminal post assembly 1 is locked and an unlocking state in which the terminal post assembly 1 is unlocked, the locking component 2 is in the locking state after the terminal post assembly 1 is pressed for the first time relative to the fixing component 3, and the locking component 2 is in the unlocking state after the terminal post assembly 1 is pressed for the second time relative to the fixing component 3.

[0023] In the technical solution, after the terminal post assembly 1 is pressed for the first time relative to the fixing component 3, the locking component 2 is in the locking state, so that the terminal post assembly 1 is locked by the locking component 2, thereby realizing that the terminal post assembly 1, the locking component 2 and the fixing component 3 are quickly assembled together; after the terminal post assembly 1 is pressed for the second time relative to the fixing component 3, the locking component 2 is in the unlocking state, so that the locking of the terminal post assembly 1 by the locking component 2 is released, thereby realizing that the terminal post assembly 1 is quickly detached from the fixing component 3. Compared with the prior art, the terminal post assembly 1 of the present application can realize quick installation and detachment.

[0024] For reference Figures 1 to 3 As shown, the locking component 2 comprises a locking sleeve 21 and a stop body 22 formed on an inner peripheral wall of the locking sleeve 21, the terminal post assembly 1 comprises a terminal post 11 and an insulating component 12, the insulating component 12 comprises an insulating sleeve 121 and a stop matching body 122 formed on an outer peripheral wall of the insulating sleeve 121, the insulating sleeve 121 is fixedly sleeved on the terminal post 11, the insulating component 12 is detachably inserted into the fixing component 3, and the insulating sleeve 121 passes through the locking sleeve 21 in the axial direction of the locking sleeve 21, the stop body 22 has a stop position in which the stop body 22 stops the stop matching body 122 and a avoiding position in which the stop of the stop matching body 122 by the stop body 22 is released, the locking component 2 is in the locking state when the stop body 22 is in the stop position, and the locking component 2 is in the unlocking state when the stop body 22 is in the avoiding position.

[0025] In the embodiment, when the stop body 22 in the locking sleeve 21 stops the stop matching body 122 on the insulation sleeve 121, the insulation sleeve 121 cannot be pulled out of the fixing member 3, and thus the locking of the insulation sleeve 121 is achieved; when the stop body 22 in the locking sleeve 21 releases the locking of the stop matching body 122 on the insulation sleeve 121, the insulation sleeve 121 can be pulled out of the fixing member 3, and thus the unlocking of the insulation sleeve 121 is achieved. Since the insulation sleeve 121 is fixedly sleeved on the terminal post 11, the locking and unlocking of the insulation sleeve 121 is equivalent to the locking and unlocking of the whole terminal post assembly 1. The terminal post 11 is a copper rod, the terminal post 11 and the insulation sleeve 121 are fixed by epoxy resin bonding, the stop body 22 can be integrally formed on the inner circumferential wall of the locking sleeve 21, and the stop matching body 122 can be integrally formed on the outer circumferential wall of the insulation sleeve 121.

[0026] As a specific embodiment, the fixing member 3 has a first cavity, and the locking member 2 is rotatably arranged in the first cavity. After the terminal post assembly 1 is pressed twice relative to the fixing member 3, the locking sleeve 21 can be driven to rotate to drive the stop body 22 to switch between the stop position and the avoiding position.

[0027] In the technical scheme, after the terminal post assembly 1 is pressed twice relative to the fixing member 3, the locking sleeve 21 can be driven to rotate to drive the stop body 22 to switch between the stop position and the avoiding position, so that the stop body 22 can change position, and the stop body 22 can change position to achieve the stop and avoidance of the stop matching body 122.

[0028] For reference Figures 1 to 3 As shown in the figure, the insulation sleeve 121 is connected with the sliding member 13, the inner circumferential wall of the locking sleeve 21 is provided with a first guide groove 4 and a second guide groove 5, the first guide groove 4 extends along the axial direction of the locking sleeve 21, and the first guide groove 4 extends to the end of the locking sleeve 21 in the direction away from the stop body 22, the end of the first guide groove 4 close to the stop body 22 is connected with the second guide groove 5, and the second guide groove 5 extends in the direction away from the stop body 22 along the circumferential direction of the locking sleeve 21. In the process that the sliding member 13 slides from the first guide groove 4 to the second guide groove 5, the locking member 2 is driven to rotate to drive the stop body 22 to switch to the stop position.

[0029] In the embodiment, during the assembly of the terminal block assembly 1 to the fixed component 3, the sliding component 13 slides into the first guide slot 4 from the top of the first guide slot 4. Since the insulating sleeve 121 only moves axially under the pressing action without rotating, during the sliding of the sliding component 13 from the first guide slot 4 to the second guide slot 5, the locking sleeve 21 is driven to rotate, and after the rotation of the locking sleeve 21, the locking sleeve 21 can drive the stop body 22 to change position, so that the locking component 2 is driven to rotate to drive the stop body 22 to switch to the stop position, and then the terminal block assembly 1 is quickly assembled on the fixed component 3. The insulating sleeve 121 is provided with a threaded hole 10, the sliding component 13 is provided with an external thread, the sliding component 13 is threadedly connected in the threaded hole 10, and the outer surface of the portion of the sliding component 13 inserted into the guide slot is smooth.

[0030] With reference to Figure 1 , Figure 3 and Figure 4 , the inner peripheral wall of the locking sleeve 21 is further provided with a third guide slot 6 and a fourth guide slot 7, one end of the second guide slot 5 away from the first guide slot 4 is connected with the third guide slot 6, the third guide slot 6 extends along the circumferential direction of the locking sleeve 21 towards the direction close to the stop body 22, the fourth guide slot 7 extends along the axial direction of the locking sleeve 21, and the fourth guide slot 7 extends along the direction away from the stop body 22 to the end of the locking sleeve 21, one end of the fourth guide slot 7 close to the stop body 22 is connected with one end of the third guide slot 6 away from the second guide slot 5, during the sliding of the sliding component 13 from the third guide slot 6 to the fourth guide slot 7, the locking component 2 is driven to rotate to drive the stop body 22 to switch to the avoiding position.

[0031] In the technical scheme, since the insulating sleeve 121 only moves axially without rotating, during the sliding of the sliding component 13 from the third guide slot 6 to the fourth guide slot 7, the locking sleeve 21 is driven to rotate, and after the rotation of the locking sleeve 21, the locking sleeve 21 can drive the stop body 22 to change position, so that the locking component 2 is driven to rotate to drive the stop body 22 to switch to the avoiding position. After the stop body 22 switches to the avoiding position, the terminal block assembly 1 is pulled upwards, the sliding component 13 slides out along the fourth guide slot 7, and then the terminal block assembly 1 is quickly disassembled from the fixed component 3.

[0032] As a specific embodiment, the number of the stop matching bodies 122 and the number of the stop bodies 22 are both two, and the two stop bodies 22 form stops to the two stop matching bodies 122 respectively, so that the locking effect is better. Further, the two stop matching bodies 122 are oppositely arranged at 180° on the insulating sleeve 121, the two stop bodies 22 are oppositely arranged at 180° in the locking sleeve 21, the central angle corresponding to the first guide groove 4 and the second guide groove 5 is 90°, the central angle corresponding to the third guide groove 6 and the fourth guide groove 7 is 90°, so that the design process is simpler. Preferably, the first guide groove 4 and the fourth guide groove 7 are symmetrical on the locking sleeve 21, and the second guide groove 5 and the third guide groove 6 are symmetrical on the locking sleeve 21.

[0033] With reference to Figure 1 and Figure 2 As shown, the fixing member 3 also has a second chamber, the cross-sectional area of the second chamber is larger than the cross-sectional area of the first chamber, the first chamber is communicated with the outside of the fixing member 3 through the second chamber, and the insulating member 12 further comprises an anti-rotation body 123 formed on the outer peripheral wall of the insulating sleeve 121. In the state that the insulating member 12 is inserted into the fixing member 3, the anti-rotation body 123 is located in the second chamber. When the locking member 2 is driven to rotate to drive the stop body 22 to switch between the stop position and the avoiding position, the anti-rotation body 123 and the second chamber cooperate to prevent the insulating member 12 from rotating.

[0034] In the embodiment, the anti-rotation body 123 can be a square piece structure, and the second chamber can be a square chamber. The anti-rotation body 123 matches the second chamber, and the shapes of the anti-rotation body 123 and the second chamber determine that the anti-rotation body 123 can only move along the height direction of the second chamber and cannot rotate relative to the second chamber. Therefore, the anti-rotation body 123 and the second chamber cooperate to prevent the insulating member 12 from rotating, and further prevent the entire terminal block assembly 1 from rotating.

[0035] With reference to Figure 1 As shown, the second chamber is provided with an elastic member 8, and the elastic member 8 is clamped between the anti-rotation body 123 and the bottom of the second chamber.

[0036] The technical scheme is characterized in that the elastic component 8 is arranged to make the terminal post assembly 1 automatically obtain upward force after being pressed, thereby forcing the sliding component 13 to slide from the first guide groove 4 into the second guide groove 5 and to slide from the third guide groove 6 into the fourth guide groove 7, and further to drive the locking sleeve 21 to rotate. In order to make the sliding component 13 smoothly slide from the first guide groove 4 into the second guide groove 5, from the second guide groove 5 into the third guide groove 6, and further from the third guide groove 6 into the fourth guide groove 7, the first guide groove 4 and the second guide groove 5, the second guide groove 5 and the third guide groove 6, and the third guide groove 6 and the fourth guide groove 7 are all subjected to round corner transition processing. It can be understood that when the terminal post assembly 1 is pressed for the first time relative to the fixed component 3 to make the locking component 2 lock the terminal post assembly 1, the sliding component 13 is located at the joint of the second guide groove 5 and the third guide groove 6, and the stop cooperating body 122 is located below the stop body 22. When the sliding component 13 is located in the first guide groove 4 or the fourth guide groove 7, the stop body 22 and the stop cooperating body 122 are dislocated, thereby making the stop body 22 lose the stop of the stop cooperating body 122. Further, the distance that the anti-rotation body 123 can press the elastic component 8 to move downward should be greater than the height of the first guide groove 4, thereby ensuring that the sliding component 13 can smoothly slide into the joint of the first guide groove 4 and the second guide groove 5.

[0037] Referring to Figure 1 As shown in the figure, the second chamber is provided with a detachable limiting component 9 which limits the locking sleeve 21 along the axial direction of the locking sleeve 21.

[0038] In the embodiment, when the limiting component 9 limits the locking sleeve 21 along the axial direction of the locking sleeve 21, the movement of the locking sleeve 21 along the axial direction is prevented, thereby ensuring that the locking sleeve 21 only rotates in the circumferential direction during the process that the sliding component 13 slides from the first guide groove 4 into the second guide groove 5 and from the third guide groove 6 into the fourth guide groove 7. It should be noted that the limiting component 9 comprises a limiting body and a screw, the screw detachably fixes the limiting body on the bottom wall of the second chamber, and the limiting body has a part extending into the first chamber to limit the locking sleeve 21, and the cooperation of the screw and the limiting body can realize the disassembly or assembly of the locking component 2 from or into the fixed component 3. As Figure 5 As shown in the figure, the fixed component 3 is provided with an avoiding hole, the avoiding hole and the second chamber are located on the upper and lower sides of the first chamber respectively, and the first chamber also communicates with the outside of the fixed component 3 through the avoiding hole. Figure 1 As shown in the figure, the locking sleeve 21 is limited between the bottom of the first chamber and the limiting body, and the terminal post 11 and the insulating sleeve 121 all pass through the avoiding hole.

[0039] It should be noted that the existing technology adopts a threaded connection mode for assembling the terminal post assembly, and when the terminal post assembly is disassembled for many times or the terminal post assembly is applied to a vibrating environment, the threaded connection mode is prone to loosening, and excessive loosening will cause the terminal post assembly to fall off, and thus the cable is prone to falling off, which may cause an accidental electric shock or short circuit hazard. The stop body 22 of the present application stops the stop cooperation body 122 to realize the assembly of the terminal post assembly 1 on the fixed part 3, and even if disassembled for many times or applied to a vibrating environment, the terminal post assembly 1 will not loosen and fall off.

[0040] The present application also provides a kind of electric equipment, including the conductive wiring structure described above, and the electric equipment can be motor, transformer and the like, and the conductive wiring structure is assembled on the electric equipment by the fixed part 3.

[0041] Those skilled in the art will readily understand that the advantageous technical features of the above-mentioned modes can be freely combined and superimposed without conflict.

[0042] The above is only the preferred embodiment of the present application, and does not limit the present application. Any modification, equivalent replacement and improvement made within the spirit and principle of the present application shall be included in the protection scope of the present application. The above is only the preferred embodiment of the present application, and it should be pointed out that for ordinary skilled in the art, without departing from the technical principles of the present application, a number of improvements and modifications can be made, and these improvements and modifications should be considered as the protection scope of the present application.

Claims

1. An electrically conductive wiring structure, characterized by, The utility model provides a locking device of terminal block assembly, which comprises a terminal block assembly (1), a locking part (2) and a fixing part (3), the locking part (2) is installed in the fixing part (3), the terminal block assembly (1) is detachably inserted in the fixing part (3), the locking part (2) has a locking state for locking the terminal block assembly (1) and an unlocking state for unlocking the terminal block assembly (1), the locking part (2) is in the locking state after the terminal block assembly (1) is pressed for the first time relative to the fixing part (3), and the locking part (2) is in the unlocking state after the terminal block assembly (1) is pressed for the second time relative to the fixing part (3).

2. The electrically conductive wiring structure of claim 1, wherein, The locking part (2) comprises a locking sleeve (21) and a stop body (22) formed on the inner circumferential wall of the locking sleeve (21), the terminal block assembly (1) comprises a terminal block (11) and an insulation part (12), the insulation part (12) comprises an insulation sleeve (121) and a stop matching body (122) formed on the outer circumferential wall of the insulation sleeve (121), the insulation sleeve (121) is fixedly sleeved on the terminal block (11), the insulation part (12) is detachably inserted in the fixing part (3), and the insulation sleeve (121) passes through the locking sleeve (21) in the axial direction of the locking sleeve (21), the stop body (22) has a stop position for stopping the stop matching body (122) and a avoiding position for releasing the stop of the stop matching body (122), the locking part (2) is in the locking state when the stop body (22) is in the stop position, and the locking part (2) is in the unlocking state when the stop body (22) is in the avoiding position.

3. The conductive wiring structure of claim 2, wherein, The fixing part (3) has a first cavity, and the locking part (2) is rotatably arranged in the first cavity, after the terminal block assembly (1) is pressed twice relative to the fixing part (3), the locking sleeve (21) can be driven to rotate to drive the stop body (22) to switch between the stop position and the avoiding position.

4. The conductive wiring structure of claim 3, wherein, The insulation sleeve (121) is connected with a sliding part (13), a first guide groove (4) and a second guide groove (5) are formed on the inner circumferential wall of the locking sleeve (21), the first guide groove (4) extends in the axial direction of the locking sleeve (21), and the first guide groove (4) extends to the end of the locking sleeve (21) in the direction away from the stop body (22), one end of the first guide groove (4) close to the stop body (22) is connected with the second guide groove (5), and the second guide groove (5) extends in the circumferential direction of the locking sleeve (21) in the direction away from the stop body (22), in the process that the sliding part (13) slides from the first guide groove (4) to the second guide groove (5), the locking part (2) is driven to rotate to drive the stop body (22) to switch to the stop position.

5. The conductive wiring structure of claim 4, wherein, A third guide slot (6) and a fourth guide slot (7) are further formed on the inner circumferential wall of the locking sleeve (21), one end of the second guide slot (5) away from the first guide slot (4) is connected with the third guide slot (6), the third guide slot (6) extends along the circumference of the locking sleeve (21) towards the direction close to the stop body (22), the fourth guide slot (7) extends along the axis of the locking sleeve (21), and the fourth guide slot (7) extends to the end of the locking sleeve (21) away from the stop body (22), one end of the fourth guide slot (7) close to the stop body (22) is connected with one end of the third guide slot (6) away from the second guide slot (5), in the process that the sliding component (13) slides from the third guide slot (6) to the fourth guide slot (7), the locking component (2) is driven to rotate to drive the stop body (22) to switch to the avoiding position.

6. The electrically conductive wiring structure of claim 5, wherein, The number of the stop cooperation bodies (122) and the number of the stop bodies (22) are both two, the two stop cooperation bodies (122) are oppositely arranged at 180° on the insulating sleeve (121), the two stop bodies (22) are oppositely arranged at 180° in the locking sleeve (21), the central angle corresponding to the first guide slot (4) and the second guide slot (5) is 90°, and the central angle corresponding to the third guide slot (6) and the fourth guide slot (7) is 90°.

7. The conductive wiring structure according to any one of claims 3 to 6, wherein The fixing component (3) further has a second chamber, the cross-sectional area of the second chamber is greater than the cross-sectional area of the first chamber, the first chamber is in communication with the outside of the fixing component (3) through the second chamber, the insulating component (12) further comprises an anti-rotation body (123) formed on the outer circumferential wall of the insulating sleeve (121), in the state that the insulating component (12) is inserted into the fixing component (3), the anti-rotation body (123) is in the second chamber, and when the locking component (2) is driven to rotate to drive the stop body (22) to switch between the stop position and the avoiding position, the anti-rotation body (123) and the second chamber cooperate to prevent the insulating component (12) from rotating.

8. The conductive wiring structure of claim 7, wherein, An elastic component (8) is installed in the second chamber, and the elastic component (8) is clamped between the anti-rotation body (123) and the bottom of the second chamber.

9. The conductive wiring structure of claim 7, wherein, A detachable limiting assembly (9) is installed in the second chamber, and the limiting assembly (9) limits the locking sleeve (21) along the axis of the locking sleeve (21).

10. An electric device, characterized by The conductive wiring structure comprises the conductive wiring structure according to any one of claims 1 to 9.