Wire collecting and arranging device for wire drawing machine
By combining grating disks and photoelectric sensors, the problem of low stability in the wire drawing machine's take-up and wiring device was solved, achieving more stable and precise wire wiring control and reducing the risk of device damage.
Patent Information
- Application Number
- CN202310313686.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-03-28
- Publication Date
- 2025-11-11
- Estimated Expiration
- 2043-03-28
AI Technical Summary
The existing wire drawing machine's take-up and winding device has low stability, and the limit switch control method has a significant impact on the stability of the winding.
By combining a grating disk and a photoelectric sensor, the rotation direction of the first motor is controlled by recording the number of pulse signals through a light receiver, thereby achieving uniform cable management.
It improves the stability and control precision of the wiring device, reduces the risk of device damage due to unidirectional movement, and has a reasonable structure and strong practicality.
Smart Images

Figure CN116159884B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of wire drawing machine technology, and specifically relates to a wire take-up and routing device for a wire drawing machine. Background Technology
[0002] When a wire drawing machine is taking in the wire, it needs to control the back-and-forth movement of the wire guide wheel to ensure that the wire is evenly distributed on the wheel. The existing method of controlling the back-and-forth movement of the wire guide wheel is usually achieved through limit switches. Two limit switches are set on each side of the wire guide wheel's movement direction. The inner limit switch is used to determine the movement direction of the wire guide wheel, and the two outer limit switches are used to protect the safety of the entire machine when the inner limit switch fails. This type of limit switch control method for taking in the wire requires the adjustment of the wire guide wheel's movement direction after the limit switch is triggered. The wire is greatly affected by the limit switch, resulting in low stability. Summary of the Invention
[0003] This invention provides a wire take-up and wiring device for a wire drawing machine, which solves the technical problem of low stability in existing wire wiring devices.
[0004] This invention is achieved through the following technical solution: a wire take-up and take-up device for a wire drawing machine, comprising: a base, a first motor, a lead screw, a mounting frame, a transmission assembly, a take-up reel, a light-transmitting disc, a light emitter, a light receiver, and a control module. The first motor is mounted on the base, the lead screw is rotatably mounted on the base and is drivenly connected to the first motor, the mounting frame is movably mounted on the base and is drivenly connected to the lead screw, the transmission assembly is mounted on one side of the mounting frame, the take-up reel is rotatably mounted on the side of the mounting frame away from the transmission assembly and is drivenly connected to the transmission assembly, a mounting box is mounted on the first motor, the light-transmitting disc is mounted on the power output end of the first motor and is located inside the mounting box, the light-transmitting disc has a grating hole, and the light emitter... The optical receiver is installed inside the mounting box. The optical reflector and the optical receiver are located on opposite sides of the optical disc. The optical receiver receives pulse signals from the optical emitter passing through the grating aperture. The control module is mounted on the first motor and is electrically connected to both the optical receiver and the first motor. The control module records the number of pulse signals received by the optical receiver. When the number of pulse signals is less than a preset number of pulse signals, the first motor rotates clockwise, and the cable is evenly wound onto one end of the take-up reel. When the number of pulse signals is greater than or equal to the preset number of pulse signals, the first motor rotates counterclockwise, the cable reaches one end of the take-up reel, and is wound onto the other end of the take-up reel, and the number of pulse signals returns to zero.
[0005] Optionally, in order to better implement the present invention, the number of grating holes is several, and the several grating holes are distributed in a circular array along the axis of the power output end of the first motor.
[0006] Optionally, to better implement the present invention, the transmission assembly includes a second motor, a transmission rod, and a mounting block. The second motor is mounted on the mounting frame, and the power output end of the second motor points to the take-up reel. The middle part of the transmission rod is rotatably mounted in the mounting frame, one end of the transmission rod is connected to the power output end of the second motor, the take-up reel is detachably mounted on the other end of the transmission rod, the mounting block is detachably mounted on the transmission rod, and the take-up reel is located between the mounting block and the mounting frame.
[0007] Optionally, to better implement the present invention, a fixing plate is also included, which is installed between the mounting block and the take-up reel, with one side of the fixing plate abutting against the side wall of the take-up reel.
[0008] Optionally, to better implement the present invention, the mounting frame includes a transmission block, a base plate, and a mounting frame. The transmission block has a screw hole and is connected to the lead screw through the screw hole. The base plate is mounted above the transmission block, and the mounting frame is mounted above the base plate. The mounting frame has a through hole, and the transmission rod is rotatably mounted in the through hole. The second motor and the take-up reel are respectively located on both sides of the mounting frame.
[0009] Optionally, to better implement the present invention, it further includes two first guide posts and two guide sleeves. The two first guide posts are mounted on the base and are respectively disposed on both sides of the lead screw. The two guide sleeves are mounted on the bottom wall of the base plate and are slidably sleeved on the two first guide posts.
[0010] Optionally, to better implement the present invention, it further includes a mounting sleeve, an adjusting block, several limiting plates, limiting posts, and a clamp. The mounting sleeve is installed on the base at one end away from the second motor. The adjusting block is slidably inserted into the mounting sleeve. The adjusting block has a through-hole, and the orientation of the movable slot is consistent with the wire feeding direction of the take-up reel. Several limiting plates are installed on the two opposite inner sidewalls of the movable slot. Several limiting plates on both sides of the movable slot are staggered. Several limiting plates on the same sidewall of the movable slot are equidistantly arrayed, forming a channel between the limiting plates and the movable slot. The limiting posts are installed on the sidewall of the mounting sleeve and are located within the channel. The limiting posts are used to adjust the height of the adjusting block. The clamp is installed on the top wall of the adjusting block. An arc-shaped groove is formed on the top wall of the clamp, and the arc-shaped groove is used to guide the cable routing.
[0011] Optionally, to better implement the present invention, the clamping head includes a mounting plate, a plurality of second guide posts and a clamping wire head. A groove is formed on the top wall of the adjusting block, the mounting plate is located in the groove, the plurality of second guide posts are respectively arranged on both sides of the mounting plate, a plurality of guide holes are formed on the two opposite side walls of the groove, the plurality of second guide posts are respectively inserted into the plurality of guide holes, the clamping wire head is installed on the top wall of the mounting plate, the clamping wire head is located above the adjusting block, and the arc-shaped groove is located on the top wall of the clamping wire head.
[0012] Optionally, to better implement the present invention, a counterweight is also included, which is installed at the end of the adjusting block away from the arcuate groove.
[0013] Optionally, to better implement the present invention, the control module includes a communication module and a controller. The communication module is electrically connected to the optical receiver. The communication module is used to record the number of pulse signals received by the optical receiver. The communication module, the first motor, and the second motor are all electrically connected to the controller.
[0014] Compared with the prior art, the present invention has the following advantages:
[0015] The wire take-up and take-up device for a wire drawing machine provided by this invention includes a base, a first motor, a lead screw, a mounting frame, a transmission assembly, a take-up reel, a light-transmitting disc, a light emitter, a light receiver, and a control module. The first motor is mounted on the base, and the lead screw is rotatably mounted on the base and is driven by the lead screw. The mounting frame is movably mounted on the base and is driven by the lead screw. The transmission assembly is mounted on one side of the mounting frame, and the take-up reel is rotatably mounted on the side of the mounting frame away from the transmission assembly and is driven by the take-up reel. A mounting box is mounted on the first motor, and the light-transmitting disc is mounted on the power output end of the first motor. The light-transmitting disc is located inside the mounting box and has a grating hole. The light emitter is mounted on... The optical receiver is installed inside the mounting box, while the optical reflector and optical receiver are located on opposite sides of the optical disc. The optical receiver receives pulse signals from the optical transmitter passing through the grating aperture. The control module is mounted on the first motor and is electrically connected to both the optical receiver and the first motor. The control module records the number of pulse signals received by the optical receiver. When the number of pulse signals is less than a preset number, the first motor rotates clockwise, and the cable is evenly wound onto one end of the take-up reel. When the number of pulse signals is greater than or equal to the preset number, the first motor rotates counterclockwise, the cable reaches one end of the take-up reel, and is wound onto the other end, at which point the number of pulse signals returns to zero. Thus, the first motor and lead screw are mounted on the base and are connected by a drive mechanism. The mounting frame is connected to the lead screw drive mechanism, and the drive assembly and take-up reel are mounted on opposite sides of the mounting frame. The optical transmitter and optical receiver are located inside the mounting box, the control module is located on the first motor, and the optical disc is located inside the mounting box.
[0016] Through the above structure, the wire take-up and winding device for a wire drawing machine provided by this invention solves the technical problem of low stability in existing wire winding devices. Specifically, a first motor drives a lead screw to rotate, thereby moving the transmission components and take-up wheel on the mounting frame. The external wire winding position is fixed, and the take-up wheel moves under the transmission of the lead screw to wind the wire onto the take-up wheel. When the wire winding begins, the wire end is located at one end of the take-up wheel. Under the control of the first motor, the lead screw rotates clockwise, driving the wire winding towards the other end of the take-up wheel. While the lead screw rotates, the optical receiver records the number of pulse signals starting from zero. When the number of pulse signals received by the optical receiver is greater than or equal to a preset number of pulse signals, the wire reaches the other end of the take-up wheel. The control module controls the first motor to rotate counterclockwise, and the take-up reel to move in the opposite direction, so that the wire is wound towards the end where the wire is installed. At the same time, the number of pulse signals recorded by the control module is reset to zero, and the count is restarted as the lead screw moves. Therefore, this take-up and wire-layout device determines the position of the wire by recording the number of pulse signals and controls the direction of the wire winding. The stability of the control is better than that of limit switch control. The structure is reasonable and the practicality is strong. In particular, when the number of pulse signals is greater than the preset value, it is determined that the take-up reel is turning, which reduces the risk of damage to the device due to the lead screw guiding the take-up reel to move excessively in one direction. Attached Figure Description
[0017] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0018] Figure 1 This is a schematic diagram of the structure of the wire take-up and winding device for a wire drawing machine provided in an embodiment of the present invention;
[0019] Figure 2 This is a cross-sectional view of the wire take-up and winding device for a wire drawing machine provided in an embodiment of the present invention;
[0020] Figure 3 This is an exploded view of the first motor in an embodiment of the present invention;
[0021] Figure 4 This is a schematic diagram of the card head portion in an embodiment of the present invention;
[0022] Figure 5 This is a cross-sectional view of the card head portion in an embodiment of the present invention;
[0023] Figure 6 This is a schematic diagram of the control module in an embodiment of the present invention.
[0024] In the diagram: 1-Base; 21-First motor; 22-Transmission optical disc; 23-Light transmitter; 24-Light receiver; 3-Lead screw; 4-Mounting bracket; 41-Transmission block; 42-Base plate; 43-Mounting frame; 5-Transmission assembly; 51-Second motor; 52-Transmission rod; 53-Mounting block; 6-Take-up reel; 7-Fixing plate; 81-First guide post; 82-Guide sleeve; 9-Control module; 91-Communication module; 92-Controller; 101-Mounting sleeve; 102-Adjusting block; 103-Limiting plate; 104-Limiting post; 105-Clipper; 20-Mounting plate; 30-Second guide post; 40-Clipper head; 11-Counterweight; 100-Raster hole; 200-Channel; 300-Arc groove. Detailed Implementation
[0025] To make the objectives, technical solutions, and advantages of this invention clearer, the technical solutions of this invention will be described in detail below. Obviously, the described embodiments are merely some embodiments of this invention, and not all embodiments. Based on the embodiments of this invention, all other implementation methods obtained by those skilled in the art without creative effort are within the scope of protection of this invention.
[0026] Example
[0027] This embodiment provides a take-up and winding device for a wire drawing machine, addressing the technical problem of low stability in existing wire winding devices. The take-up and winding device includes a base 1, a first motor 21, a lead screw 3, a mounting bracket 4, a transmission assembly 5, a take-up reel 6, a light-transmitting disc 22, a light transmitter 23, a light receiver 24, and a control module 9, wherein:
[0028] The base 1 includes a first vertical plate, a second vertical plate, and a horizontal plate. The horizontal plate is connected to the bottom wall of the first vertical plate and the bottom wall of the second vertical plate, respectively. A first motor 21 is mounted on the first vertical plate. A lead screw 3 is rotatably mounted between the first and second vertical plates and is driven by the first motor 21. A mounting frame 4 is movably mounted between the first and second vertical plates and is driven by the lead screw 3. A transmission assembly 5 is mounted on one side of the mounting frame 4. A take-up reel 6 is rotatably mounted on the side of the mounting frame 4 away from the transmission assembly 5 and is driven by the transmission assembly 5. A mounting box is mounted on the first motor 21. A light transmission disc 22 is mounted on the power output end of the first motor 21 and is located inside the mounting box. The light transmission disc 22 has a grating hole 100. A light emitter 2... The light reflector and the light receiver 24 are respectively installed in the mounting box. The light reflector and the light receiver 24 are located on both sides of the optical disc 22. The light receiver 24 receives the pulse signal from the light emitter 23 through the grating hole 100. The control module 9 is installed on the first motor 21. The control module 9 is electrically connected to the light receiver 24 and the first motor 21 respectively. The control module 9 is used to record the number of pulse signals received by the light receiver 24. When the number of pulse signals is less than the preset number of pulse signals, the first motor 21 rotates clockwise, and the cable is evenly wound onto the take-up reel 6. When the number of pulse signals is greater than or equal to the preset number of pulse signals, the first motor 21 rotates counterclockwise, the cable reaches one end of the take-up reel 6, and is wound onto the other end of the take-up reel 6, and the number of pulse signals returns to zero.
[0029] Through the above structure, the wire take-up and winding device for the wire drawing machine provided in this embodiment solves the technical problem of low stability of existing wire winding devices. Specifically, the first motor 21 drives the lead screw 3 to rotate, thereby moving the transmission component 5 and the take-up wheel 6 on the mounting frame 4. The external wire winding position is fixed, and the take-up wheel 6 moves under the transmission of the lead screw 3 to wind the wire onto the take-up wheel 6. When the wire winding begins, the wire end is located at one end of the take-up wheel 6. Under the control of the first motor 21, the lead screw 3 rotates clockwise, driving the wire winding to the other end of the take-up wheel 6. At the same time as the lead screw 3 rotates, the optical receiver 24 records the number of pulse signals starting from zero. When the number of pulse signals received by the optical receiver 24 is greater than or equal to the preset number of pulse signals, the wire reaches the take-up wheel. At the other end of 6, the control module 9 controls the first motor 21 to rotate counterclockwise, and the take-up reel 6 moves in the opposite direction so that the wire is wound towards the end where the wire is installed. At the same time, the number of pulse signals recorded by the control module 9 is reset to zero and is counted again as the lead screw 3 moves. Therefore, this take-up and wire-layout device determines the position of the wire by recording the number of pulse signals and controls the direction of the winding and laying of the wire. The stability of the control is better than that of the limit switch control. The structure is reasonable and the practicality is strong. In particular, when the number of pulse signals is greater than the preset value, it is determined that the take-up reel 6 is turning, which reduces the risk of damaging the device due to the lead screw 3 guiding the take-up reel 6 to move excessively in one direction.
[0030] An optional implementation of this embodiment is as follows: The number of grating holes 100 is several, and the several grating holes 100 are distributed in a circular array along the axis of the power output end of the first motor 21. In this way, the number of grating holes 100 determines the control accuracy of the first motor 21. When the number of grating holes 100 is large, the fan-shaped angle between two adjacent grating holes 100 and the center of the optical disc 22 is small. When the control module 9 records a pulse signal, the rotation angle of the lead screw 3 is smaller, and the control accuracy is higher.
[0031] An optional implementation of this embodiment is as follows: The transmission assembly 5 includes a second motor 51, a transmission rod 52, and a mounting block 53. The second motor 51 is mounted on the mounting frame 4, and the power output end of the second motor 51 points towards the take-up reel 6. The middle part of the transmission rod 52 is rotatably mounted inside the mounting frame 4, and one end of the transmission rod 52 is connected to the power output end of the second motor 51. The take-up reel 6 is detachably mounted on the other end of the transmission rod 52, and the mounting block 53 is detachably mounted on the transmission rod 52. The take-up reel 6 is located between the mounting block 53 and the mounting frame 4. In this way, the first motor 21 rotates at a constant speed, driving the take-up reel 6 to rotate at a constant speed, thereby making the wire evenly collected on the take-up reel 6.
[0032] More preferably, the cable routing device also includes a fixing plate 7, which is installed between the mounting block 53 and the take-up reel 6. One side of the fixing plate 7 is attached to the side wall of the take-up reel 6. Specifically, the fixing plate 7 has a wedge-shaped surface, and the side wall of the take-up reel 6 has a mounting hole. When the mounting block 53 fixes the take-up reel 6, the wedge-shaped surface extends into the mounting hole to further lock the take-up reel 6, thereby reinforcing the installation of the take-up reel 6.
[0033] An optional implementation of this embodiment is as follows: The mounting frame 4 includes a transmission block 41, a base plate 42, and a mounting frame 43. The transmission block 41 has a screw hole and is connected to the lead screw 3 through the screw hole. The base plate 42 is mounted above the transmission block 41, and the mounting frame 43 is mounted above the base plate 42. The mounting frame 43 has a through hole, and the transmission rod 52 is rotatably mounted in the through hole. The second motor 51 and the take-up reel 6 are respectively located on both sides of the mounting frame 43.
[0034] An optional implementation of this embodiment is as follows: The cable laying device further includes two first guide posts 81 and two guide sleeves 82. The two first guide posts 81 are mounted on the base 1 and are respectively disposed on both sides of the lead screw 3. The two guide sleeves 82 are mounted on the bottom wall of the base plate 42 and are respectively slidably sleeved on the two first guide posts 81. The first guide posts 81 help to stabilize the moving direction of the take-up wheel 6.
[0035] An optional implementation of this embodiment is as follows: The cable routing device further includes a mounting sleeve 101, an adjusting block 102, several limiting plates 103, limiting posts 104, and a clamp 105. The mounting sleeve 101 is mounted on the base 1 at the end away from the second motor 51. The adjusting block 102 is slidably inserted into the mounting sleeve 101. A movable groove is provided through the adjusting block 102, and the orientation of the movable groove is the same as the cable feeding direction of the take-up reel 6. Several limiting plates 103 are mounted on two opposite inner sidewalls of the movable groove, and the several limiting plates 103 on both sides of the movable groove are staggered. Several limiting plates 103 are equidistantly arrayed on the same side wall of the movable groove, forming a channel 200 between the limiting plates 103 and the movable groove. Limiting posts 104 are installed on the side wall of the mounting sleeve 101, located within the channel 200. The limiting posts 104 are used to adjust the height of the adjusting block 102. A locking head 105 is installed on the top wall of the adjusting block 102. An arc-shaped groove 300 is provided on the top wall of the locking head 105, serving as a guide for the cable routing. When the cable routing head is located on the side of the take-up reel 6 away from the second motor 51, the inner... The wall abuts against the adjusting block 102, so that the limiting post 104 abuts against the bottom wall of the limiting plate 103 and the side wall of the movable groove away from the second motor 51. The cable is engaged in the arc-shaped groove 300. When the take-up reel 6 moves away from the second motor 51, the cable is always engaged in the arc-shaped groove 300. The arc-shaped groove 300 is arc-shaped, and the fan angle of the arc-shaped groove 300 is smaller than the flat angle. In this way, when the cable is laid out under the guidance of the arc-shaped groove 300, it is avoided that the arc-shaped groove 300 comes into contact with adjacent wound cables and damages the wound cables. The cable is then stored in the... When the take-up reel 6 approaches the side of the second motor 51, the inner wall of the take-up reel 6 abuts against the adjusting block 102, so that the limiting post 104 is placed in the channel 200 near the side of the second motor 51. At this time, due to the staggered arrangement of the limiting plates 103, the adjusting block 102 moves down as a whole due to gravity. The limiting post 104 abuts against the bottom wall of the limiting plate 103 near the side of the second motor 51 and the side wall of the movable groove near the second motor 51. In this way, the clamp 105 drops by the height of one cable diameter, so that the clamp 105 can guide the winding of the next row of cables.
[0036] Optionally, the clamping head 105 includes a mounting plate 20, a plurality of second guide posts 30, and a clamping head 40. A groove is provided on the top wall of the adjusting block 102, the mounting plate 20 is located in the groove, the plurality of second guide posts 30 are respectively disposed on both sides of the mounting plate 20, a plurality of guide holes are provided on the two opposite side walls of the groove, and the plurality of second guide posts 30 are respectively inserted into the plurality of guide holes. The clamping head 40 is installed on the top wall of the mounting plate 20 and is located above the adjusting block 102. The arc-shaped groove 300 is located on the top wall of the clamping head 40. In this way, when the cable winding direction is reversed, the groove opening of the arc-shaped groove 300 is always in contact with the inner side wall of the take-up wheel 6 so that the arc-shaped groove 300 can guide the cable winding.
[0037] More preferably, the cable routing device also includes a counterweight 11, which is installed at the end of the adjusting block 102 away from the arc groove 300. In this way, when the cable routing is reversed, the movement of the limiting post 104 within the channel 200 and the downward movement of the adjusting block 102 are more convenient.
[0038] An optional implementation of this embodiment is as follows: The control module 9 includes a communication module 91 and a controller 92. The communication module 91 uses RS-485 communication and is electrically connected to the optical receiver 24. The communication module 91 is used to record the number of pulse signals received by the optical receiver 24. The communication module 91, the first motor 21, and the second motor 51 are all electrically connected to the controller 92. The controller 92 is an STM32 microcontroller. In this way, the controller 92 controls the direction of the first motor 21 by comparing the number of pulse signals recorded by the communication module 91 with the preset number of pulse signals. The controller 92 controls the second motor 51 to rotate at a constant speed to cooperate with the action of the first motor 21 and realize the storage of the ribbon cable.
[0039] The above description is merely a specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope described in the present invention should be included within the scope of protection of the present invention. Therefore, the scope of protection of the present invention should be determined by the scope of the claims.
Claims
1. A wire take-up and winding device for a wire drawing machine, characterized in that, include: Base; The first motor is mounted on the base; A lead screw is rotatably mounted on the base, and the lead screw is connected to the first motor via a transmission connection. The mounting bracket is movably mounted on the base and is connected to the lead screw drive. A transmission assembly is mounted on one side of the mounting bracket; A take-up reel is rotatably mounted on the side of the mounting bracket away from the transmission assembly, and the take-up reel is drive-connected to the transmission assembly; The first motor has a mounting box, the optical disc is mounted on the power output end of the first motor, the optical disc is located inside the mounting box, and the optical disc has grating holes. The number of grating holes is several, and the several grating holes are distributed in a circular array along the axis of the power output end of the first motor. The light emitter is installed inside the mounting box; An optical receiver is installed inside the mounting box. The optical transmitter and the optical receiver are located on opposite sides of the optical disc. The optical receiver receives the pulse signal transmitted by the optical transmitter through the grating aperture. A control module is installed on the first motor. The control module is electrically connected to both the optical receiver and the first motor. The control module is used to record the number of pulse signals received by the optical receiver. When the number of pulse signals is less than a preset number of pulse signals, the first motor rotates clockwise, and the cable is evenly wound onto one end of the take-up reel. When the number of pulse signals is greater than or equal to the preset number of pulse signals, the first motor rotates counterclockwise, the cable reaches one end of the take-up reel, and is wound onto the other end of the take-up reel, and the number of pulse signals returns to zero. The transmission assembly includes: A second motor is mounted on the mounting bracket, and the power output end of the second motor points towards the take-up reel; A transmission rod is rotatably mounted in the mounting bracket at its middle section. One end of the transmission rod is connected to the power output end of the second motor, and the take-up reel is detachably mounted on the other end of the transmission rod. The mounting block is detachably mounted on the drive rod, and the take-up reel is located between the mounting block and the mounting frame; The mounting bracket includes: A transmission block, wherein a screw hole is provided on the transmission block, and the transmission block is connected to the lead screw through the screw hole; A base plate is mounted above the transmission block; A mounting frame is installed above the substrate. A through hole is provided on the mounting frame. The transmission rod is rotatably installed in the through hole. The second motor and the take-up reel are respectively located on both sides of the mounting frame. The cable winding and unwinding device further includes: a mounting sleeve, which is installed on the base at one end away from the second motor; The adjusting block is slidably inserted into the mounting sleeve; A plurality of limiting plates are provided, and a movable groove is provided through the adjusting block. The orientation of the movable groove is the same as the wire feeding direction of the take-up reel. The plurality of limiting plates are installed on the opposite inner sidewalls of the movable groove. The plurality of limiting plates on both sides of the movable groove are staggered. The plurality of limiting plates on the same sidewall of the movable groove are equidistantly arrayed. A channel is formed between the limiting plates and the movable groove. A limiting post is installed on the side wall of the mounting sleeve. The limiting post is located inside the channel and is used to adjust the height of the adjusting block. A clip is installed on the top wall of the adjusting block. An arc-shaped groove is provided on the top wall of the clip, which is used to guide the ribbon cable.
2. The wire take-up and winding device for a wire drawing machine according to claim 1, characterized in that, Also includes: A fixing plate is installed between the mounting block and the take-up reel, with one side of the fixing plate abutting against the side wall of the take-up reel.
3. The wire take-up and winding device for a wire drawing machine according to claim 1, characterized in that, Also includes: Two first guide posts are installed on the base, and the two first guide posts are respectively located on both sides of the lead screw; Two guide sleeves are installed on the bottom wall of the substrate, and the two guide sleeves are slidably sleeved on the two first guide posts respectively.
4. The wire take-up and winding device for a wire drawing machine according to claim 1, characterized in that, The card header includes: The mounting plate has a groove on the top wall of the adjusting block, and the mounting plate is located in the groove. A plurality of second guide posts are disposed on both sides of the mounting plate, and a plurality of guide holes are provided on the two opposite side walls of the sink, and the plurality of second guide posts are respectively inserted into the plurality of guide holes. A wire clamp is installed on the top wall of the mounting plate, the wire clamp is located above the adjusting block, and the arc-shaped groove is located on the top wall of the wire clamp.
5. The wire take-up and winding device for a wire drawing machine according to claim 1, characterized in that, Also includes: A counterweight is installed at the end of the adjusting block away from the arc-shaped groove.
6. The wire take-up and winding device for a wire drawing machine according to claim 1, characterized in that, The control module includes: A communication module, electrically connected to the optical receiver, is used to record the number of pulse signals received by the optical receiver; The controller, the communication module, the first motor and the second motor are all electrically connected to the controller.
Citation Information
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