Wire transmission monitoring device and wire twisting and cutting device
Through the combination of the wire pressing mechanism and the encoder mechanism, real-time monitoring of the stranded wire cutting device is achieved, which solves the problem of being unable to monitor the length and speed of the stranded wire, and ensures stable transmission and accurate size control of the stranded wire cutting device.
Patent Information
- Application Number
- CN202422390079.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-29
- Publication Date
- 2025-09-23
- Estimated Expiration
- 2034-09-29
AI Technical Summary
The existing technology is unable to monitor the length and speed of the stranded wire or the stranded wire cutting in real time, resulting in frequent abnormal strand size and abnormal transmission of the wire cutting device.
By combining a wire pressing mechanism and an encoder mechanism, the wire is clamped through the gap between the first belt transmission unit and the second belt transmission unit, and the encoder mechanism is connected to one of them to achieve real-time monitoring of the wire transmission speed and length.
It effectively prevents the stranded wire from unraveling, ensures accurate size control of the stranded wire cutting device, avoids transmission abnormalities, and improves product quality.
Smart Images

Figure CN223377954U_ABST
Abstract
Description
Technical Field
[0001] The present application belongs to the field of wire processing technology, and specifically relates to a wire transmission monitoring device and a twisted wire cutting device. Background Art
[0002] Stranded wire is widely used in many applications, improving performance and reliability while simplifying installation and maintenance. To meet the needs of various applications, stranded wire is often cut into different sizes using a strand cutting device. However, real-time monitoring of the length and speed of the strands or strand cutting in this device is crucial to prevent abnormal strand sizes and transmission errors. Utility Model Content
[0003] Purpose of the utility model: An embodiment of the present application provides a wire transmission monitoring device, which aims to solve the problem of not being able to monitor the length and transmission speed of twisted wire or twisted wire cutting; another purpose of an embodiment of the present application is to provide a twisted wire cutting device having the above-mentioned wire transmission monitoring device.
[0004] Technical solution: An embodiment of the present application provides a wire transmission monitoring device, which includes: a wire pressing mechanism, the wire pressing mechanism includes a first belt transmission unit, a second belt transmission unit, and a driving unit, the driving unit is connected to the first belt transmission unit, and the driving unit is used to drive the first belt transmission unit to move closer to or away from the second belt transmission unit, so that there is a gap between the first belt transmission unit and the second belt transmission unit for clamping the wire; an encoder mechanism, the encoder mechanism is connected to one of the first belt transmission unit and the second belt transmission unit.
[0005] Beneficial effect: Compared with the prior art, the wire transmission monitoring device of the embodiment of the present application includes: a wire pressing mechanism and an encoder mechanism. The wire pressing mechanism includes a first belt transmission unit, a second belt transmission unit, and a driving unit. The driving unit drives the first belt transmission unit to move closer to or away from the second belt transmission unit, so that there is a gap between the first belt transmission unit and the second belt transmission unit for clamping the wire, which is convenient for feeding the wire and pressing the wire at the same time; the encoder mechanism is connected to one of the first belt transmission unit and the second belt transmission unit, and moves synchronously with the first belt transmission unit and the second belt transmission unit through the encoder mechanism, so that the encoder can monitor the transmission speed of the wire between the first belt transmission unit and the second belt transmission unit, thereby avoiding abnormal wire size and abnormal transmission of the twisted wire cutting device.
[0006] Compared with the prior art, the stranded wire cutting device of the embodiment of the present application includes all the technical features and technical effects of the above-mentioned wire transmission monitoring device, which will not be repeated here. BRIEF DESCRIPTION OF THE DRAWINGS
[0007] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the following briefly introduces the drawings required for use in the description of the embodiments. Obviously, the drawings described below are only some embodiments of the present application. For those skilled in the art, other drawings can be obtained based on these drawings without creative work.
[0008] Figure 1 A schematic diagram of the overall structure of a wire transmission monitoring device provided in an embodiment of the present application;
[0009] Figure 2 A schematic diagram of an exemplary structure of a first mounting plate provided in an embodiment of the present application;
[0010] Figure 3 A schematic diagram of a portion of the structure of a wire transmission monitoring device provided in an embodiment of the present application;
[0011] Figure 4 A schematic diagram of a portion of the structure of a wire transmission monitoring device provided in an embodiment of the present application;
[0012] Figure 5 A schematic diagram of a portion of the structure of a wire transmission monitoring device provided in an embodiment of the present application;
[0013] Figure 6 A schematic diagram of an exemplary structure of a second mounting plate provided in an embodiment of the present application;
[0014] Figure 7 A schematic diagram of an exemplary structure of a fourth mounting plate provided in an embodiment of the present application;
[0015] Figure 8 A schematic diagram of an exemplary structure of a bracket provided in an embodiment of the present application;
[0016] Description of reference numerals:
[0017] 10-pressing mechanism, 11-first belt transmission unit, 111-first synchronous wheel, 112-second synchronous wheel, 113-first transmission belt, 12-second belt transmission unit, 121-third synchronous wheel, 122-fourth synchronous wheel, 123-second transmission belt, 13-driving unit, 131-cylinder, 1311-output shaft, 132-guide rod, 133-second mounting plate, 1331-first guide hole, 1332-first through hole, 1333-second through hole, 134-third mounting plate, 135- Fourth mounting plate, 1351-hole, 1352-third through hole, 1353-fourth through hole, 14-first mounting plate, 141-guide groove, 15-first rotating shaft, 16-second rotating shaft, 17-third rotating shaft, 18-fourth rotating shaft, 20-encoder mechanism, 21-encoder body, 22-bracket, 221-first connecting end, 222-second connecting end, 223-third connecting end, 224-fifth through hole, 30-first guide member, 31-second guide hole, 40-second guide member, 41-third guide hole. DETAILED DESCRIPTION
[0018] The following will be combined with the drawings in the embodiments of this application to clearly and completely describe the technical solutions in the embodiments of this application. Obviously, the embodiments described are only part of the embodiments of this application, not all of the embodiments. Based on the embodiments in this application, all other embodiments obtained by those skilled in the art without making creative efforts shall fall within the scope of protection of this application.
[0019] In the description of this application, it should be understood that the specific embodiments described herein are only used to illustrate and explain this application and are not used to limit this application. The terms "length", "width", "thickness", "up", "down", "front", "back", "left", "right", "top", "bottom", "inside", "outside", etc. indicate positions or positional relationships based on the positions or positional relationships shown in the accompanying drawings. They are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. Therefore, they cannot be understood as limitations on this application. In addition, the terms "first" and "second" are only used for descriptive purposes and cannot be understood as indicating or implying relative importance or implicitly indicating the number of technical features indicated. Therefore, the features defined as "first" and "second" may explicitly or implicitly include one or more features.
[0020] The present application provides a wire transmission monitoring device and a stranded wire cutting device, each of which is described in detail below. It should be noted that the order in which the following embodiments are described does not limit the preferred order of the embodiments of the present application. In addition, in the following embodiments, the description of each embodiment has its own emphasis. For parts not described in detail in one embodiment, please refer to the relevant description of other embodiments.
[0021] The applicant has noted that stranded wire is widely used in many applications. It can improve the performance and reliability of wires and simplify the installation and maintenance process. In order to meet the needs of different applications, stranded wires usually need to be cut into strands of different sizes by a stranded wire cutting device. However, in the stranded wire cutting device, it is very important to monitor the length and speed of the stranded wire or the stranded wire cutting in real time, so as to avoid abnormal stranded wire size and abnormal transmission of the stranded wire cutting device. However, during the transmission of stranded wire, there is no monitoring of the transmission of stranded wire in the prior art. The use of a pressure wheel type of monitoring will cause the stranded wire to become loose, affecting the size, and thus making it impossible to monitor the accurate size.
[0022] In view of this, combined with Figures 1 to 8 , an embodiment of the present application provides a wire transmission monitoring device, aiming to overcome the above technical problems.
[0023] See also Figure 1 In some embodiments, a wire transmission monitoring device includes: a wire pressing mechanism 10, the wire pressing mechanism 10 includes a first belt transmission unit 11, a second belt transmission unit 12, and a driving unit 13, the driving unit 13 is connected to the first belt transmission unit 11, and the driving unit 13 is used to drive the first belt transmission unit 11 to move closer to or away from the second belt transmission unit 12, so that there is a gap between the first belt transmission unit 11 and the second belt transmission unit 12 for clamping the wire; an encoder mechanism 20, the encoder mechanism 20 is connected to one of the first belt transmission unit 11 and the second belt transmission unit 12.
[0024] It should be understood that an encoder is a device for converting mechanical or electronic motion into digital signals; the wire is clamped in the gap between the first belt transmission unit 11 and the second belt transmission unit 12, so that the transmission of the wire will move synchronously with the first belt transmission unit 11 and the second belt transmission unit 12; the encoder mechanism 20 is connected to one of the first belt transmission unit 11 and the second belt transmission unit 12, which means that the encoder mechanism 20 can be connected to the first belt transmission unit 11 to detect the motion data of the first belt transmission unit 11; the encoder mechanism 20 can also be connected to the second belt transmission unit 12 to detect the motion data of the first belt transmission unit 11.
[0025] Through the above technical solution, the wire is clamped by the gap between the first belt transmission unit 11 and the second belt transmission unit 12, which effectively prevents the stranded wire from becoming loose, and the wire transmission speed and transmission size are synchronously detected by the encoder mechanism 20, avoiding abnormal wire size and abnormal transmission of the stranded wire cutting device.
[0026] See also Figure 2 、 Figure 3 、 Figure 6 and Figure 7 In some embodiments, the wire pressing mechanism 10 further includes a first mounting plate 14 having a guide groove 141 configured to align with the movement of the first belt transmission unit 11. The first belt transmission unit 11 and the second belt transmission unit 12 are both disposed on one side of the first mounting plate 14, and the drive unit 13 is disposed on the other side of the first mounting plate 14. Furthermore, the first belt transmission unit 11 moves along a predetermined trajectory of the guide groove 141. In some embodiments, the guide groove 141 is a linear groove.
[0027] In some embodiments, the driving unit 13 includes a cylinder 131, a guide rod 132, a second mounting plate 133, and a third mounting plate 134. The second mounting plate 133 is connected to the first belt transmission unit 11. The second mounting plate 133 has a first guide hole 1331. The third mounting plate 134 is connected to the first mounting plate 14. The guide rod 132 is connected to the third mounting plate 134 and passes through the first guide hole 1331. The cylinder 131 includes an output shaft 1311. The cylinder 131 is connected to the first mounting plate 14 and is connected to the second mounting plate 133 through the output shaft 1311. The cylinder 131 drives the second mounting plate 133 to move on the guide rod 132 through the output shaft 1311, so that the first belt transmission unit 11 and the second mounting plate 133 move synchronously.
[0028] It should be understood that the cylinder 131 drives the second mounting plate 133 to move by moving the output shaft 1311, wherein the output shaft 1311 can be a piston rod. Furthermore, to enhance the stability of the synchronous movement of the first belt transmission unit 11 and the second mounting plate 133, in some embodiments, a plurality of guide rods 132 are provided, each having a corresponding number of first guide holes 1331.
[0029] Exemplarily, the second mounting plate 133 is connected to the first belt transmission unit 11, the second mounting plate 133 has a first guide hole 1331, the third mounting plate 134 is connected to the first mounting plate 14, so that the third mounting plate 134 is fixed on the first mounting plate 14, the guide rod 132 is connected to the third mounting plate 134 and passes through the first guide hole 1331, and then the guide rod 132 is fixedly connected to the third mounting plate 134, so that the guide rod 132 is stable and motionless, which is convenient for the movement of the second mounting plate 133, and the cylinder 131 is fixedly connected to the first mounting plate 14; it should be noted that the extension direction of the guide rod is the same as the extension direction of the guide groove 141, which facilitates the synchronous movement of the first belt transmission unit 11 and the second mounting plate 133.
[0030] In some embodiments, the driving unit 13 also includes: a fourth mounting plate 135, the fourth mounting plate 135 is respectively connected to the first mounting plate 14 and the second belt transmission unit 12, and the fourth mounting plate 135 has a hole 1351 on the side facing the second mounting plate 133, and the fourth mounting is connected to the guide rod 132 through the hole 1351.
[0031] Exemplarily, the fourth mounting plate 135 is fixedly connected to the first mounting plate 14, and the fourth mounting plate 135 is further connected to the second belt transmission unit 12, so that the position of the second belt transmission unit 12 is fixed, which is convenient for serving as a reference object for the movement of the first belt transmission unit 11, and thus controls the gap between the first belt transmission unit 11 and the second belt transmission unit 12 for clamping the wire, so as to better clamp the wire for transmission.
[0032] See also Figure 4 In some embodiments, the first belt transmission unit 11 includes a first synchronous pulley 111, a second synchronous pulley 112, and a first transmission belt 113, and the first transmission belt 113 is synchronously wound around the first synchronous pulley 111 and the second synchronous pulley 112; the second belt transmission unit 12 includes a third synchronous pulley 121, a fourth synchronous pulley 122, and a second transmission belt 123, and the second transmission belt 123 is synchronously wound around the third synchronous pulley 121 and the fourth synchronous pulley 122; the wire is clamped in the gap between the first transmission belt 113 and the second transmission belt 123.
[0033] See also Figure 5 、 Figure 6 and Figure 7In order to facilitate the rotation of the first synchronous wheel 111 and the second synchronous wheel 112 in the first transmission belt 113, and the rotation of the third synchronous wheel 121 and the fourth synchronous wheel 122 in the second transmission belt 123, in some embodiments, the second mounting plate 133 has a first through hole 1332 and a second through hole 1333, and the fourth mounting plate 135 has a third through hole 1352 and a fourth through hole 1353; the wire pressing mechanism 10 also includes: a first rotating shaft 15, one end of the first rotating shaft 15 is connected to the first synchronous wheel 111, and the other end of the first rotating shaft 15 is connected to the second mounting plate 133 through the corresponding guide groove 141 and passes through First through hole 1332; second rotating shaft 16, one end of the second rotating shaft 16 is connected to the second synchronous wheel 112, and the other end of the second rotating shaft 16 is connected to the second mounting plate 133 through the corresponding guide groove 141 and passes through the second through hole 1333; third rotating shaft 17, one end of the third rotating shaft 17 is connected to the third synchronous wheel 121, and the other end of the third rotating shaft 17 is connected to the fourth mounting plate 135 and passes through the third through hole 1352; fourth rotating shaft 18, one end of the fourth rotating shaft 18 is connected to the fourth synchronous wheel 122, and the other end of the fourth rotating shaft 18 is connected to the fourth mounting plate 135 and passes through the fourth through hole 1353.
[0034] It should be noted that, since the first belt transmission unit 11 and the second belt transmission unit 12 are both arranged on one side of the first mounting plate 14, and the driving unit 13 is arranged on the other side of the first mounting plate 14, the first rotating shaft 15, the second rotating shaft 16, the third rotating shaft 17, and the fourth rotating shaft 18 all pass through the first mounting plate 14, thereby connecting the corresponding synchronous wheels and mounting blocks on both sides of the first mounting plate 14, and then, the first rotating shaft 15 and the second rotating shaft 16 have corresponding guide grooves 141 on the first mounting plate 14, and the first rotating shaft 15 and the second rotating shaft 16 pass through the corresponding guide grooves 141 and are connected to the corresponding mounting blocks; wherein, each rotating shaft is fixedly connected to the corresponding synchronous wheel, and each rotating shaft is connected to the corresponding synchronous wheel through a bearing. The corresponding mounting blocks are connected, and the transmission movement of the first transmission belt 113 and the second transmission belt 123 drives the first synchronous wheel 111 and the second synchronous wheel 112 to rotate in the first transmission belt 113, and the third synchronous wheel 121 and the fourth synchronous wheel 122 to rotate in the second transmission belt 123, so that the first rotating shaft 15, the second rotating shaft 16, the third rotating shaft 17, and the fourth rotating shaft 18 rotate in the corresponding through holes. Each rotating shaft is connected to the corresponding mounting block through a bearing, so that the rotation of the rotating shaft in the corresponding through hole is more stable; in addition, a nut is provided at the position where each rotating shaft passes through the corresponding through hole to fix the rotating shaft, so that the rotating shaft is stable during rotation and prevents the rotating shaft from rotating out of the way, and a U-shaped nut can be used.
[0035] In some embodiments, the wire pressing mechanism 10 further includes a fifth synchronous wheel, which is disposed within the first transmission belt 113 and between the first synchronous wheel 111 and the second synchronous wheel 112. The fifth synchronous wheel may also be disposed within the second transmission belt 123 and between the third synchronous wheel 121 and the fourth synchronous wheel 122. There may be multiple fifth synchronous wheels. By disposing the fifth synchronous wheel within the first and second transmission belts 113, 123, the fifth synchronous wheel moves with the first and second transmission belts 113, 123, increasing the pressure in the middle section of the transmission belts, thereby facilitating compression of the wire and effectively preventing the stranded wire from unraveling.
[0036] It should be noted that if a fifth synchronous wheel is provided in the first transmission belt 113, the first belt transmission unit 11 includes the fifth synchronous wheel, and the fifth synchronous wheel can move with the first belt transmission unit 11, and then the first mounting plate 14 has a guide groove 141 corresponding to the fifth synchronous wheel, so that the rotating shaft corresponding to the fifth synchronous wheel passes through the corresponding guide groove 141 and is connected to the second mounting plate 133, and then the second mounting plate 133 has a hole corresponding to the rotating shaft of the fifth synchronous wheel, so that the fifth synchronous wheel is set on the second mounting plate 133 through a bearing.
[0037] Since the wire is clamped between the first transmission belt 113 and the second transmission belt 123, the first transmission belt 113 and the second transmission belt 123 move synchronously during the transmission of the wire, so that the first rotating shaft 15, the second rotating shaft 16, the third rotating shaft 17, and the fourth rotating shaft 18 also rotate synchronously, and the encoder mechanism 20 can be connected to any one of the rotating shafts; in some embodiments, the encoder mechanism 20 is connected to the other end of one of the first rotating shaft 15, the second rotating shaft 16, the third rotating shaft 17, and the fourth rotating shaft 18, wherein the one of the first rotating shaft 15, the second rotating shaft 16, the third rotating shaft 17, and the fourth rotating shaft 18 connected to the encoder mechanism 20 is the target rotating shaft, and the one of the second mounting plate 133 and the fourth mounting plate 135 connected to the target rotating shaft serves as the target mounting plate.
[0038] See also Figure 3 、 Figure 5 and Figure 8In some embodiments, the encoder mechanism 20 includes an encoder body 21 and a bracket 22. The bracket 22 has a first connecting end 221, a second connecting end 222, a third connecting end 223, and a fifth through-hole 224. The first connecting end 221 and the second connecting end 222 are connected to the target mounting plate. The target shaft passes through the fifth through-hole 224 and is connected to the encoder body 21. The third connecting end 223 is connected to the encoder body 21. The connection of the bracket 22 to the target mounting plate via the first connecting end 221 and the second connecting end 222 further stabilizes the encoder body 21 on the target mounting plate. The encoder body 21 is coaxially connected to the synchronous wheel, which increases the synchronization of measurement and makes the measurement data of the encoder body 21 more accurate.
[0039] It should be noted that the encoder body 21 includes an external fixed part and an internal rotating part. In the present application, the target shaft is connected to the rotating part inside the encoder body 21 and can be fixedly connected by a set screw. The third connection end 223 is fixedly connected to the external fixed part so that the encoder body 21 can synchronously monitor the movement data of the corresponding shaft, and then monitor the wire transmission process.
[0040] See also Figure 4 In some embodiments, the wire pressing mechanism 10 further includes: a first guide member 30 and a second guide member 40. The first guide member 30 has a second guide hole 31, and the second guide member 40 has a third guide hole 41. The first guide member 30 and the second guide member 40 are located on both sides of the gap for clamping the wire, and the second guide hole 31 and the third guide hole 41 correspond to the gap for clamping the wire, so that the wire can pass through the second guide hole 31 and the third guide hole 41. The second guide hole 31 and the third guide hole 41 on the first guide member 30 and the second guide member 40 provide an inlet and outlet for the wire to enter and exit, and limit the wire so that the wire is clamped between the two conveyor belts for easy transmission.
[0041] The working principle of the wire transmission monitoring device of the application is described below by way of example:
[0042] First, the cylinder 131 drives the second mounting plate 133 to move, so that the first belt transmission unit 11 connected to the second mounting plate 133 moves closer to or away from the second belt transmission unit 12, so that a gap for clamping the wire exists between the first belt transmission unit 11 and the second belt transmission unit 12, thereby effectively clamping the wire, effectively preventing the stranded wire from becoming untied, and monitoring the wire size;
[0043] Then, the wire enters the wire transmission monitoring device through the first guide member 30, passes through the gap between the first belt transmission unit 11 and the second belt transmission unit 12, and passes out from the second guide member 40;
[0044] Then, the wire moves under the pull of the external wire cutting mechanism, and the first belt transmission unit 11 and the second belt transmission unit 12 will move synchronously with the wire based on the clamping wire, thereby synchronously driving the rotating body in the encoder body 21 to rotate synchronously;
[0045] Finally, the encoder mechanism 20 can monitor the length and moving speed of the wire. If an external mechanism is abnormal and causes abnormal wire transmission, the encoder will prompt the external mechanism to alarm and shut down.
[0046] The wire transmission monitoring device of the present application has a simple structure and can effectively monitor the size of the stranded wire cutting to ensure product quality.
[0047] Accordingly, the embodiment of the present application provides a stranded wire cutting device, including the wire transmission monitoring device in the above embodiment, and can have all the technical features and technical effects of the above wire transmission monitoring device, which will not be repeated here.
[0048] The above is a detailed introduction to a wire transmission monitoring device and a twisted wire cutting device provided by the present application. Specific examples are used in this article to illustrate the principles and implementation methods of the present application. The description of the above embodiments is only used to help understand the method of the present application and its core idea; at the same time, for general technical personnel in this field, based on the ideas of the present application, there will be changes in the specific implementation methods and application scope. In summary, the content of this specification should not be understood as a limitation on the present application.
Claims
1. A wire transmission monitoring device, characterized in that: include: A wire pressing mechanism (10), comprising a first belt transmission unit (11), a second belt transmission unit (12), and a driving unit (13), wherein the driving unit (13) is connected to the first belt transmission unit (11), and the driving unit (13) is used to drive the first belt transmission unit (11) to move closer to or away from the second belt transmission unit (12), so that a gap for clamping a wire is provided between the first belt transmission unit (11) and the second belt transmission unit (12); An encoder mechanism (20) is connected to one of the first belt transmission unit (11) and the second belt transmission unit (12).
2. The wire transmission monitoring device according to claim 1, characterized in that: The wire pressing mechanism (10) further includes: a first mounting plate (14), the first mounting plate (14) being provided with a guide groove (141) that matches the movement of the first belt transmission unit (11), the first belt transmission unit (11) and the second belt transmission unit (12) being both arranged on one side of the first mounting plate (14), and the driving unit (13) being arranged on the other side of the first mounting plate (14).
3. The wire transmission monitoring device according to claim 2, characterized in that: The driving unit (13) comprises a cylinder (131), a guide rod (132), a second mounting plate (133), and a third mounting plate (134); the second mounting plate (133) is connected to the first belt transmission unit (11); the second mounting plate (133) has a first guide hole (1331); the third mounting plate (134) is connected to the first mounting plate (14); the guide rod (132) is connected to the third mounting plate (134) and passes through the first guide hole (1331); the cylinder (131) comprises an output shaft (1311); the cylinder (131) is connected to the first mounting plate (14) and is connected to the second mounting plate (133) through the output shaft (1311); the cylinder (131) drives the second mounting plate (133) to move on the guide rod (132) through the output shaft (1311), so that the first belt transmission unit (11) and the second mounting plate (133) move synchronously.
4. The wire transmission monitoring device according to claim 3, characterized in that: The driving unit (13) further includes: a fourth mounting plate (135), the fourth mounting plate (135) being connected to the first mounting plate (14) and the second belt transmission unit (12), respectively; the fourth mounting plate (135) has a hole (1351) on a side facing the second mounting plate (133), and the fourth mounting plate is connected to the guide rod (132) through the hole (1351).
5. The wire transmission monitoring device according to claim 4, characterized in that: The first belt transmission unit (11) comprises a first synchronous wheel (111), a second synchronous wheel (112), and a first transmission belt (113); the first transmission belt (113) is synchronously wound around the first synchronous wheel (111) and the second synchronous wheel (112); The second belt transmission unit (12) comprises a third synchronous wheel (121), a fourth synchronous wheel (122), and a second transmission belt (123); the second transmission belt (123) is synchronously wound around the third synchronous wheel (121) and the fourth synchronous wheel (122); The wire is clamped in the gap between the first transmission belt (113) and the second transmission belt (123).
6. The wire transmission monitoring device according to claim 5, characterized in that: The second mounting plate (133) has a first through hole (1332) and a second through hole (1333), and the fourth mounting plate (135) has a third through hole (1352) and a fourth through hole (1353); the wire pressing mechanism (10) further includes: a first rotating shaft (15), one end of the first rotating shaft (15) being connected to the first synchronous wheel (111), and the other end of the first rotating shaft (15) being connected to the second mounting plate (133) through the corresponding guide groove (141) and passing through the first through hole (1332); a second rotating shaft (16), one end of the second rotating shaft (16) being connected to the second synchronous wheel (112), and the other end of the second rotating shaft (16) being connected to the second mounting plate (133) through the corresponding guide groove (141) and passing through the second through hole (1333); a third rotating shaft (17), one end of the third rotating shaft (17) being connected to the third synchronous wheel (121), and the other end of the third rotating shaft (17) being connected to the fourth mounting plate (135) and passing through the third through hole (1352); A fourth rotating shaft (18), one end of the fourth rotating shaft (18) is connected to the fourth synchronous wheel (122), and the other end of the fourth rotating shaft (18) is connected to the fourth mounting plate (135) and passes through the fourth through hole (1353).
7. The wire transmission monitoring device according to claim 6, characterized in that: The encoder mechanism (20) is connected to the other end of one of the first rotating shaft (15), the second rotating shaft (16), the third rotating shaft (17), and the fourth rotating shaft (18), wherein the one of the first rotating shaft (15), the second rotating shaft (16), the third rotating shaft (17), and the fourth rotating shaft (18) connected to the encoder mechanism (20) is the target rotating shaft, and the one of the second mounting plate (133) and the fourth mounting plate (135) connected to the target rotating shaft serves as the target mounting plate.
8. The wire transmission monitoring device according to claim 7, characterized in that: The encoder mechanism (20) includes an encoder body (21) and a bracket (22), wherein the bracket (22) has a first connecting end (221), a second connecting end (222), a third connecting end (223), and a fifth through hole (224), wherein the first connecting end (221) and the second connecting end (222) are connected to the target mounting plate, the target rotating shaft passes through the fifth through hole (224) and is connected to the encoder body (21), and the third connecting end (223) is connected to the encoder body (21).
9. The wire transmission monitoring device according to claim 1, characterized in that: The wire pressing mechanism (10) further comprises: a first guide member (30) and a second guide member (40), wherein the first guide member (30) has a second guide hole (31), and the second guide member (40) has a third guide hole (41), and the first guide member (30) and the second guide member (40) are located on both sides of the gap for clamping the wire, and the second guide hole (31) and the third guide hole (41) correspond to the gap for clamping the wire, so that the wire passes through the second guide hole (31) and the third guide hole (41).
10. A twisted wire cutting device, characterized in that: A wire transmission monitoring device comprising the device described in any one of claims 1 to 9.