wire handler

By designing a wire processor, which utilizes the cooperation of elastic and actuating components, automatic clamping and cutting of wires is achieved, solving the problem of inaccurate wire stripping and cutting in existing technologies, and improving operational efficiency and electrical performance.

CN119582058BActive Publication Date: 2026-05-29MAOMING POWER SUPPLY BUREAU GUANGDONG POWER GRID CORP

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
MAOMING POWER SUPPLY BUREAU GUANGDONG POWER GRID CORP
Filing Date
2024-11-28
Publication Date
2026-05-29

AI Technical Summary

Technical Problem

In existing technologies, the stripping and cutting of conductors is labor-intensive and inaccurate, especially when dealing with steel-cored aluminum stranded wires for high-voltage transmission lines. Human factors can easily lead to conductor damage or inaccurate cutting, affecting electrical performance and joint reliability.

Method used

A wire processor is designed, including a housing, a processing blade, and a toggle mechanism. Through the cooperation of the elastic element and the toggle mechanism, the movable blade and the fixed blade are clamped and cut, and the insulation is automatically stripped by the rotation of the processing seat.

Benefits of technology

It reduces labor intensity, improves stripping accuracy and efficiency, and ensures the reliability and electrical performance of wire connections.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application provides a wire processor, which comprises a shell, a processing knife, a poking element and a shell. The processing knife comprises a processing seat, a movable knife, a fixed knife and an elastic element. The processing seat is rotatably arranged on the shell around an axis. The fixed knife is arranged on the processing seat. The movable knife is movably arranged on the processing seat. The elastic element is arranged on the processing seat. The elastic element can provide a driving force for the movable knife to move towards the fixed knife. The movable knife and the fixed knife jointly form a clamping groove for clamping the wire. The poking element is movably arranged on the shell. The poking element can provide a poking force for the movable knife to move away from the fixed knife. The technical scheme provided by the application can solve the problem of poor stripping and cutting reliability of the wire in the related art.
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Description

Technical Field

[0001] This invention relates to the field of electrical tool technology, and more specifically, to a wire processor. Background Technology

[0002] A conductor is a transmission device used to transmit electrical energy or signals, and it is widely used in the power transmission and communication industries. To facilitate conductor placement, multiple conductors are often connected together, and at the junctions of adjacent conductors, there are joints that require stripping the insulation from the conductors.

[0003] However, wire stripping and cutting is a fundamental and frequent operation, especially when dealing with steel-cored aluminum stranded wires in high-voltage transmission lines. Steel-cored aluminum stranded wires are widely used due to their high strength and good conductivity, but when connecting, installing, or maintaining them, it is necessary to remove the outer insulation of the aluminum stranded wire to expose the internal conductor. Traditional methods usually rely on manual tools such as wire strippers or scissors. This method is not only labor-intensive, but also prone to wire damage or inaccurate cutting due to human error during operation, affecting electrical performance and the reliability of the joints. Summary of the Invention

[0004] This invention provides a wire processor to solve the problem of poor reliability in wire stripping and cutting in related technologies.

[0005] This invention provides a wire processor, comprising: a housing; a processing blade including a processing seat, a movable blade, a fixed blade, and an elastic element, wherein the processing seat is rotatably mounted on the housing about its axis, the fixed blade is mounted on the processing seat, the movable blade is movably mounted on the processing seat, and the elastic element is mounted on the processing seat, the elastic element providing a driving force to the movable blade to move toward the fixed blade, the movable blade and the fixed blade together forming a clamping groove for holding the wire; and a toggle member movably mounted on the housing, which provides a toggle force to the movable blade to move away from the fixed blade.

[0006] Furthermore, the processing seat has a forward rotation state and a reverse rotation state. When the processing seat is in the forward rotation state, the elastic element provides driving force for the movable blade. When the processing seat is in the reverse rotation state, the actuating element is in contact with the movable blade to provide actuating force and overcome the driving force.

[0007] Furthermore, the actuating element includes an actuating plate, which is oscillatingly mounted on the housing. When the processing seat is in the forward rotation state, the actuating plate avoids the movable blade. When the processing seat is in the reverse rotation state, the actuating plate returns to its initial position and engages with the movable blade to provide actuating force and overcome the driving force.

[0008] Furthermore, the movable blade includes an operating section and a blade segment connected together. The operating section is oscillatingly mounted on the processing seat and located outside the clamping groove. When the processing seat is in the forward rotation state, the blade segment and the fixed blade together form a clamping groove for clamping the wire. When the processing seat is in the reverse rotation state, the actuating plate is in contact with the operating section.

[0009] Furthermore, the operating section is provided with a first arc surface, and the toggle plate is provided with a second arc surface. When the processing seat is in the forward rotation state, the first arc surface and the second arc surface contact each other, so that the toggle plate swings and avoids the operating section.

[0010] Furthermore, a first fixed shaft is provided on the housing, and the actuating plate is oscillatingly sleeved on the first fixed shaft. A first torsion spring is also sleeved on the first fixed shaft. The two torsion arms of the first torsion spring are respectively connected to the housing and the actuating plate. The first torsion spring enables the actuating plate to fit against the movable blade.

[0011] Furthermore, a second fixed shaft is provided on the processing seat, and the movable blade is oscillatingly sleeved on the second fixed shaft. The elastic element is a second torsion spring sleeved on the second fixed shaft. The torsion arm of the second torsion spring is connected to the processing seat and the movable blade respectively. When the processing seat is in the forward rotation state, the second torsion spring provides driving force for the movable blade.

[0012] Furthermore, the processing seat is provided with a first limiting shaft, and the first limiting shaft and the fixed blade are located on both sides of the movable blade. When the processing seat is in the reverse state, the first limiting shaft and the movable blade are in a limiting fit.

[0013] Furthermore, the processing seat includes a rotating seat and an arc-shaped plate connected to each other. The rotating seat is rotatably disposed inside the housing. The housing has a communicating clearance groove and a wire groove. The arc-shaped plate passes through the clearance groove and is located outside the housing. Both the fixed blade and the movable blade are disposed on the arc-shaped plate. The wire groove passes through the end wall of the housing and communicates with the clamping groove.

[0014] Furthermore, the wire processor also includes a drive component and a transmission wheel. The drive component is connected to the transmission wheel to make the transmission wheel rotate around its own axis. A gear ring is provided on the outer periphery of the processing base. The transmission wheel and the gear ring are connected to each other to make the processing base rotate.

[0015] The wire processor of this invention includes a housing, a processing blade, and a toggle member. The toggle member moves on the housing to provide a toggle force to the movable blade, causing it to move away from the fixed blade, thus allowing the wire to be inserted between the movable and fixed blades. An elastic member then provides a driving force to the movable blade, causing it to move closer to the fixed blade. The wire is clamped in a clamping groove formed by the movable and fixed blades. The processor base rotates around its own axis, causing the movable and fixed blades to rotate as well. The movable and fixed blades then cut the insulation of the wire. Under the driving force provided by the elastic member, the insulation is peeled off completely from the wire by the movable and fixed blades during the cutting process. This reduces labor intensity and improves stripping accuracy. Attached Figure Description

[0016] The accompanying drawings, which form part of this application, are used to provide a further understanding of the invention. The illustrative embodiments of the invention and their descriptions are used to explain the invention and do not constitute an undue limitation of the invention. In the drawings:

[0017] Figure 1 A schematic diagram of the structure of a wire processor provided according to an embodiment of the present invention is shown;

[0018] Figure 2 A further structural schematic diagram of a wire processor provided according to an embodiment of the present invention is shown;

[0019] Figure 3 A further structural schematic diagram of a wire processor provided according to an embodiment of the present invention is shown.

[0020] The above figures include the following reference numerals:

[0021] 10. Housing; 11. First fixed shaft;

[0022] 20. Processing blade; 21. Processing seat; 211. Second fixed shaft; 212. First limiting shaft; 213. Rotating seat; 214. Arc plate; 22. Movable blade; 221. Operating section; 222. Blade segment; 223. First arc surface; 23. Fixed blade;

[0023] 30. Actuating element; 31. Second arc surface;

[0024] 40. Transmission wheel; 41. Bevel gear; 42. Gear disc; 43. Transition gear. Detailed Implementation

[0025] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. The following description of at least one exemplary embodiment is merely illustrative and is in no way intended to limit the present invention or its application or use. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0026] like Figures 1 to 3 As shown, this embodiment of the invention provides a wire processor, which includes a housing 10, a processing blade 20, and a toggle member 30. The processing blade 20 includes a processing base 21, a movable blade 22, a fixed blade 23, and an elastic member. The processing base 21 is rotatably mounted on the housing 10 about its axis. The fixed blade 23 is mounted on the processing base 21. The movable blade 22 is movably mounted on the processing base 21. The elastic member is mounted on the processing base 21 and can provide a driving force to the movable blade 22, causing the movable blade 22 to move toward the fixed blade 23. The movable blade 22 and the fixed blade 23 together form a clamping groove for holding the wire. The toggle member 30 is movably mounted on the housing 10 and can provide a toggle force to the movable blade 22, causing the movable blade 22 to move away from the fixed blade 23.

[0027] The wire processor of this invention includes a housing 10, a processing blade 20, and a toggle member 30. The toggle member 30 moves on the housing 10 to provide a toggle force to the movable blade 22, causing it to move away from the fixed blade 23, thus allowing the wire to be inserted between the movable blade 22 and the fixed blade 23. An elastic member then provides a driving force to the movable blade 22, causing it to move closer to the fixed blade 23. The wire is clamped in a clamping groove formed by the movable blade 22 and the fixed blade 23. The processing base 21 rotates around its own axis, causing the movable blade 22 and the fixed blade 23 to rotate. The movable blade 22 and the fixed blade 23 cut the insulation of the wire. Under the driving force provided by the elastic member, the movable blade 22 and the fixed blade 23 can peel the entire insulation off the wire during the insulation cutting process. This reduces labor intensity and improves stripping accuracy.

[0028] In other embodiments, both the movable blade 22 and the fixed blade 23 can be movably mounted on the processing base 21.

[0029] The movable blade 22 can move or rotate on the processing base 21. The goal is simply to allow the movable blade 22 to move closer to or further away from the fixed blade 23.

[0030] Specifically, the processing seat 21 has a forward rotation state and a reverse rotation state. When the processing seat 21 is in the forward rotation state, the elastic element provides driving force to the movable blade 22. When the processing seat 21 is in the reverse rotation state, the actuating element 30 engages with the movable blade 22 to provide a actuating force and overcome the driving force. With the above arrangement, by utilizing the rotation of the processing seat 21, either the elastic element can provide driving force or the actuating element can provide a actuating force, which has the advantages of simple structure and easy operation.

[0031] In this embodiment, the processing base 21 is electrically driven to switch between forward and reverse rotation states.

[0032] Furthermore, the wire processor provided in this embodiment is a handheld tool, which only requires the operator to hold it.

[0033] like Figure 1 As shown, the actuating element 30 includes an actuating plate, which is oscillatingly mounted on the housing 10. When the processing seat 21 is in the forward rotation state, the actuating plate avoids the movable blade 22. When the processing seat 21 is in the reverse rotation state, the actuating plate returns to its initial position and engages with the movable blade 22 to provide actuating force and overcome the driving force. With the above arrangement, by oscillating the actuating plate relative to the housing 10, the actuating plate can avoid the movable blade 22 in the forward rotation state, which has the advantage of simple structure.

[0034] In this process, under the influence of electrical energy, by first turning the processing seat 21 into a reverse state, the actuating plate can drive the movable blade 22 away from the fixed blade 23 to clamp the wire. Then, by turning the processing seat 21 into a forward state, the actuating plate can avoid the movable blade 22, and the elastic element can provide driving force, so that the movable blade 22 and the fixed blade 23 clamp the wire and strip it, thus realizing the automation of stripping and improving the stripping efficiency.

[0035] like Figure 1 As shown, the movable blade 22 includes an operating section 221 and a blade segment 222 connected to each other. The operating section 221 is oscillatingly mounted on the processing seat 21 and located outside the clamping groove. When the processing seat 21 is in the forward rotation state, the blade segment 222 and the fixed blade 23 together form a clamping groove for holding the wire. When the processing seat 21 is in the reverse rotation state, the actuating plate is in contact with the operating section 221. Using the movable blade 22 described above, the operating section 221 allows the blade segment 222 and the fixed blade 23 to move away from each other. The blade segment 222 and the fixed blade 23 work together to strip the wire, offering advantages such as simple structure and ease of installation.

[0036] In this embodiment, both the operation section 221 and the toggle plate are provided with a mating plane, and the two are mated together through the mating plane.

[0037] like Figure 1As shown, the operating section 221 is provided with a first arc surface 223, and the actuating plate is provided with a second arc surface 31. When the processing seat 21 is in the forward rotation state, the first arc surface 223 and the second arc surface 31 contact each other, so that the actuating plate swings and avoids the operating section 221. With the above structure, the contact between the first arc surface 223 and the second arc surface 31 can reduce the frictional force when the operating section 221 and the actuating plate are in contact, thereby making the swing of the movable blade 22 smoother.

[0038] In this embodiment, when the operating section 221 rotates forward following the processing seat 21, the first arc surface 223 and the second arc surface 31 come into contact, and the movable blade 22 drives the actuating plate to swing at a certain angle to avoid the movable blade 22.

[0039] like Figure 1 As shown, a first fixed shaft 11 is provided on the housing 10. The actuating plate is oscillatingly sleeved on the first fixed shaft 11. A first torsion spring is also sleeved on the first fixed shaft 11. The two torsion arms of the first torsion spring are respectively connected to the housing 10 and the actuating plate. The first torsion spring can make the actuating plate fit against the movable blade 22. With the above arrangement, the first torsion spring can provide elastic force to the actuating plate, so that the actuating plate fits against the movable blade 22, so that the movable blade 22 is moved away from the fixed blade 23, and the wire is placed between the movable blade 22 and the fixed blade 23.

[0040] like Figure 1 As shown, a second fixed shaft 211 is provided on the processing seat 21. The movable blade 22 is oscillatingly sleeved on the second fixed shaft 211. The elastic element is a second torsion spring sleeved on the second fixed shaft 211. The torsion arm of the second torsion spring is connected to both the processing seat 21 and the movable blade 22. When the processing seat 21 is in the forward rotation state, the second torsion spring provides a driving force to the movable blade 22. With the above configuration, the second torsion spring can provide a driving force to the movable blade 22, so that the movable blade 22 approaches the fixed blade 23, clamps the wire, and strips its insulation.

[0041] like Figure 1 As shown, the processing seat 21 is provided with a first limiting shaft 212. The first limiting shaft 212 and the fixed blade 23 are located on both sides of the movable blade 22, respectively. When the processing seat 21 is in the reverse state, the first limiting shaft 212 and the movable blade 22 are limited and engaged. The first limiting shaft 212 can limit the movable blade 22 to prevent the movable blade 22 from swinging too much and damaging the second torsion spring, thereby preventing the second torsion spring from failing.

[0042] In this embodiment, a second limiting shaft is provided on the housing 10. The second limiting shaft can limit the toggle plate to prevent the limiting plate from swinging excessively.

[0043] like Figure 1As shown, the processing seat 21 includes a rotating seat 213 and an arc-shaped plate 214 connected to each other. The rotating seat 213 is rotatably disposed inside the housing 10. The housing 10 has a communicating clearance groove and a wire groove. The arc-shaped plate 214 passes through the clearance groove and is located outside the housing 10. The fixed blade 23 and the movable blade 22 are both disposed on the arc-shaped plate 214. The wire groove passes through the end wall of the housing 10 and communicates with the clamping groove. Using the above-described processing seat 21, the rotating seat 213 can drive the arc-shaped plate 214 to rotate, and then the arc-shaped plate 214 can drive the fixed blade 23 and the movable blade 22 to rotate. It has the advantages of simple structure and easy installation.

[0044] In this embodiment, the lower surface of the arc plate 214 and the upper surface of the housing 10 form a through groove. The fixed blade 23 is disposed inside the arc plate 214. The operating section 221 of the movable blade 22 extends out of the through groove. The operating section 221 is oscillatingly disposed in the through groove of the arc plate 214. The blade segment 222 is disposed inside the arc plate 214.

[0045] The processing seat 21 also includes a connecting plate, the two ends of which are connected to the arc plate 214 and the rotating seat 213 respectively. The connecting plate extends from inside the housing 10 to outside the housing 10.

[0046] In this embodiment, the rotating seat 213 has a notch whose size corresponds to the size of the wire groove to facilitate the insertion of the wire.

[0047] Specifically, an arc-shaped groove is provided inside the housing 10, and the rotating seat 213 is guided and engaged with the arc-shaped groove.

[0048] like Figure 2 As shown, the wire processor also includes a drive component and a transmission wheel 40. The drive component is connected to the transmission wheel 40 to make the transmission wheel 40 rotate around its own axis. A gear ring is provided on the outer periphery of the processing seat 21. The transmission wheel 40 and the gear ring are connected to each other to make the processing seat 21 rotate. Using the above-described driving method, the drive component can drive the transmission wheel 40 to rotate, and then drive the processing seat 21 to rotate through the gear ring. It has the advantages of simple structure and easy implementation.

[0049] In this embodiment, the transmission wheel 40 includes a bevel gear 41, a gear disk 42, and a transition gear 43. The bevel gear 41 is sleeved on the output shaft of the drive component. The bevel gear 41 and the gear disk 42 are driven by bevel gear meshing. The gear disk 42 and the transition gear 43 are driven by spur gear meshing. The transition gear 43 and the gear ring are driven by spur gear meshing.

[0050] Since the rotating seat 213 has a notch, in order to enable the processing seat 21 to rotate continuously, two transition gears 43 are provided, and both transition gears 43 mesh with the gear ring.

[0051] The following explains the specific usage of the wire processor:

[0052] When the drive unit is started to rotate forward, the clutch drives the transmission wheel 40 to rotate, thereby driving the rotating seat 213 to rotate in reverse, which in turn drives the arc plate 214 to rotate in reverse. During this process, the fixed blade 23 rotates in reverse along with the arc plate 214 and the movable blade 22. When the operating section 221 of the movable blade 22 is hooked with the toggle plate, the movable blade 22 will overcome the torque of the second torsion spring and swing away from the fixed blade 23.

[0053] At this time, the actuating plate is limited in the opposite direction by the second limiting shaft, and the movable blade 22 is limited by the first limiting shaft 212. The clutch will make a "clicking" sound due to excessive torque. Insert the aluminum wire to be cut into the elongated oval opening at the front end of the cutter, between the movable blade 22 and the fixed blade 23. At this time, turn off the drive component to rotate forward, which can clamp the wire.

[0054] When the drive unit is started in reverse, the clutch drives the transmission wheel 40 to rotate, thereby driving the rotating seat 213 to rotate forward and the arc plate 214 to rotate forward. During this process, the fixed blade 23 rotates forward together with the arc plate 214 and the movable blade 22. The operating section 221 of the movable blade 22 separates from the actuating plate. The movable blade 22, under the torque of the second torsion spring, bites the aluminum stranded wire to be cut and drives the processing seat 21 to rotate continuously to achieve the cutting of the wire insulation.

[0055] At this time, the toggle plate will rotate a certain angle away from the second limit shaft in accordance with the torque of the first torsion spring, thereby achieving the function of avoiding the operation section 221.

[0056] The wire processor provided in this embodiment has the following advantages:

[0057] 1. Improved cutting efficiency of aluminum wire layer in steel-cored aluminum stranded wire: The equipment uses high-precision, high-hardness blades, which can quickly and accurately cut aluminum wire layers, thus improving cutting efficiency.

[0058] 2. Automatic positioning: This equipment can preset the feed rate and accurately control the cutting thickness, reducing the time and error of manual positioning;

[0059] 3. It is easy to operate; the operator only needs to turn on the start button.

[0060] It should be noted that the terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the exemplary embodiments according to this application. As used herein, the singular form is intended to include the plural form as well, unless the context clearly indicates otherwise. Furthermore, it should be understood that when the terms "comprising" and / or "including" are used in this specification, they indicate the presence of features, steps, operations, devices, components, and / or combinations thereof.

[0061] Unless otherwise specifically stated, the relative arrangement, numerical expressions, and values ​​of the components and steps set forth in these embodiments do not limit the scope of the invention. It should also be understood that, for ease of description, the dimensions of the various parts shown in the drawings are not drawn to actual scale. Techniques, methods, and devices known to those skilled in the art may not be discussed in detail, but where appropriate, such techniques, methods, and devices should be considered part of the specification. In all examples shown and discussed herein, any specific values ​​should be interpreted as merely exemplary and not as limitations. Therefore, other examples of exemplary embodiments may have different values. It should be noted that similar reference numerals and letters in the following figures denote similar items; therefore, once an item is defined in one figure, it need not be further discussed in subsequent figures.

[0062] In the description of this invention, it should be understood that the orientation or positional relationship indicated by directional terms such as "front, back, up, down, left, right", "horizontal, vertical, horizontal" and "top, bottom" is generally based on the orientation or positional relationship shown in the accompanying drawings, and is only for the convenience of describing this invention and simplifying the description. Unless otherwise stated, these directional terms do not indicate or imply that the device or element referred to must have a specific orientation or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation on the scope of protection of this invention; the directional terms "inner" and "outer" refer to the inner and outer contours relative to the outline of each component itself.

[0063] For ease of description, spatial relative terms such as "above," "on top of," "on the upper surface of," "above," etc., are used herein to describe the spatial positional relationship of a device or feature as shown in the figures to other devices or features. It should be understood that spatial relative terms are intended to encompass different orientations in use or operation beyond the orientation of the device as described in the figures. For example, if the device in the figures were inverted, a device described as "above" or "on top of" other devices or structures would subsequently be positioned as "below" or "under" other devices or structures. Thus, the exemplary term "above" can include both "above" and "below." The device may also be positioned in other different ways (rotated 90 degrees or in other orientations), and the spatial relative descriptions used herein will be interpreted accordingly.

[0064] Furthermore, it should be noted that the use of terms such as "first" and "second" to define components is merely for the purpose of distinguishing the corresponding components. Unless otherwise stated, the above terms have no special meaning and therefore should not be construed as limiting the scope of protection of this invention.

[0065] The above description is merely a preferred embodiment of the present invention and is not intended to limit the invention. Various modifications and variations can be made to the present invention by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the scope of protection of the present invention.

Claims

1. A wire processor, characterized in that, The wire processor includes: Shell (10); The processing blade (20) includes a processing seat (21), a movable blade (22), a fixed blade (23), and an elastic element. The processing seat (21) is rotatably mounted on the housing (10) about its axis. The fixed blade (23) is mounted on the processing seat (21). The movable blade (22) is movably mounted on the processing seat (21). The elastic element is mounted on the processing seat (21). The elastic element can provide a driving force to the movable blade (22) so that the movable blade (22) moves toward the fixed blade (23). The movable blade (22) and the fixed blade (23) together form a clamping groove for clamping the wire. A toggle member (30) is movably disposed on the housing (10), and the toggle member (30) is capable of providing a toggle force to the movable blade (22) so that the movable blade (22) moves in a direction away from the fixed blade (23); The processing seat (21) has a forward rotation state and a reverse rotation state. When the processing seat (21) is in the forward rotation state, the elastic element provides the driving force to the movable blade (22). When the processing seat (21) is in the reverse rotation state, the actuating element (30) engages with the movable blade (22) to provide the actuating force and overcome the driving force. The actuating element (30) includes an actuating plate, which is oscillatingly disposed on the housing (10). When the processing seat (21) is in the forward rotation state, the actuating plate avoids the movable blade (22). When the processing seat (21) is in the reverse rotation state, the actuating plate returns to its initial position and engages with the movable blade (22) to provide the actuating force and overcome the driving force. The movable blade (22) includes an operating section (221) and a blade segment (222) connected to each other. The operating section (221) is swayably disposed on the processing seat (21) and located outside the clamping groove. When the processing seat (21) is in the forward rotation state, the blade segment (222) and the fixed blade (23) together form a clamping groove for clamping the wire. When the processing seat (21) is in the reverse rotation state, the actuating plate is in contact with the operating section (221). The operating section (221) is provided with a first arc surface (223), and the actuating plate is provided with a second arc surface (31). When the processing seat (21) is in the forward rotation state, the first arc surface (223) and the second arc surface (31) contact each other, so that the actuating plate swings and avoids the operating section (221).

2. The wire processor according to claim 1, characterized in that, The housing (10) is provided with a first fixed shaft (11), and the actuating plate is swayably sleeved on the first fixed shaft (11). The first fixed shaft (11) is also sleeved with a first torsion spring. The two torsion arms of the first torsion spring are respectively connected to the housing (10) and the actuating plate. The first torsion spring can make the actuating plate fit against the movable blade (22).

3. The wire processor according to claim 1, characterized in that, The processing seat (21) is provided with a second fixed shaft (211), and the movable blade (22) is swayably sleeved on the second fixed shaft (211). The elastic element is a second torsion spring sleeved on the second fixed shaft (211). The torsion arm of the second torsion spring is connected to the processing seat (21) and the movable blade (22) respectively. When the processing seat (21) is in the forward rotation state, the second torsion spring provides the driving force to the movable blade (22).

4. The wire processor according to claim 3, characterized in that, The processing seat (21) is provided with a first limiting shaft (212). The first limiting shaft (212) and the fixed blade (23) are located on both sides of the movable blade (22). When the processing seat (21) is in the reverse state, the first limiting shaft (212) and the movable blade (22) are limited and fitted together.

5. The wire processor according to claim 1, characterized in that, The processing seat (21) includes a rotating seat (213) and an arc plate (214) connected to each other. The rotating seat (213) is rotatably disposed inside the housing (10). The housing (10) has a communicating clearance groove and a wire groove. The arc plate (214) passes through the clearance groove and is located outside the housing (10). The fixed blade (23) and the movable blade (22) are both disposed on the arc plate (214). The wire groove passes through the end wall of the housing (10) and communicates with the clamping groove.

6. The wire processor according to claim 1, characterized in that, The wire processor also includes a drive component and a transmission wheel (40). The drive component is connected to the transmission wheel (40) so that the transmission wheel (40) rotates around its own axis. A toothed ring is provided on the outer periphery of the processing seat (21). The transmission wheel (40) and the toothed ring are connected to each other so that the processing seat (21) rotates.