A guiding device for weaving annular diamond wire
By designing the guiding device and clamping components, the reciprocating screw driven by the motor moves the steel wire inside the guide tube, solving the problem of easy knotting of the steel wire during the weaving process, improving work efficiency and saving resources.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- TIANJIN XINKAI JIANYE TECH CO LTD
- Filing Date
- 2024-01-18
- Publication Date
- 2026-05-29
AI Technical Summary
When weaving ring-shaped diamond wire, the finished end of the wire is prone to tangling, which requires workers to spend a lot of time sorting it out, resulting in low work efficiency.
A ring-shaped diamond wire braiding guide device is adopted. Through the cooperation of the guide tube and the clamping assembly, the motor drives the reciprocating screw to move the clamping assembly along the guide tube, so as to realize the stable delivery and collection of steel wire and avoid knotting.
It improves the efficiency of braiding steel wire, reduces the time required for steel wire combing, saves resources, and simplifies the operation process.
Smart Images

Figure CN117753893B_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of diamond wire saws, and in particular to a guide device for annular diamond wire braiding. Background Technology
[0002] With the advent of toroidal diamond wire cutting technology, the field of materials cutting is undergoing a disruptive revolution. This innovative cutting method, due to its unparalleled precision and efficiency in handling hard materials, has been widely adopted across various industries.
[0003] Toroidal diamond wire mainly consists of steel wire and diamond abrasive grains. When making toroidal diamond wire, workers first twist and braid multiple steel wires together, and then the diamond abrasive grains are fixed to the surface of the twisted and braided steel wire through appropriate processes.
[0004] Regarding the aforementioned technologies, during the process of weaving multiple steel wires, the completed end falls freely and easily accumulates and knots. This requires workers to comb through the knotted wires, which is time-consuming and labor-intensive, resulting in low efficiency in steel wire weaving. Summary of the Invention
[0005] To improve the efficiency of braiding steel wire, this application provides a guide device for braiding annular diamond wire.
[0006] The guiding device for ring-shaped diamond wire braiding provided in this application adopts the following technical solution:
[0007] A guide device for annular diamond wire braiding includes a worktable. A guide tube is fixedly connected to the upper surface of the worktable along its own length direction. First support plates are fixedly connected to the upper surface of the worktable at opposite ends of the guide tube. A reciprocating screw is provided between the two first support plates. The reciprocating screw (13) is made by opening threaded grooves in the forward and reverse directions along its own length direction on the circumferential sidewall of the rod body. The forward threaded grooves and the reverse threaded grooves are intersected and connected. The length direction of the reciprocating screw is parallel to the guide tube. The two ends of the reciprocating screw are rotatably connected to the two first support plates respectively. A motor is connected to the upper surface of the worktable. The output shaft of the motor passes through one of the first support plates and is fixedly connected to one end of the reciprocating screw. A clamping assembly for clamping steel wire is provided at the guide tube. A connecting assembly for driving the clamping assembly to move along the length direction of the guide tube is provided at the reciprocating screw.
[0008] By adopting the above technical solution, the woven end of the steel wire is placed at the clamping component, which clamps and fixes the steel wire. At the same time, the motor is started, which drives the reciprocating screw to rotate. The reciprocating screw drives the connecting component to move along the length of the guide tube. The connecting component drives the clamping component to move, and the clamping component drives the steel wire to move. The steel wire gradually moves into the guide tube, making the woven steel wire less prone to knotting, reducing the time spent by workers to comb the steel wire, and thus improving the work efficiency of weaving steel wire.
[0009] Optionally, a clearance groove is provided through one side wall of the guide tube, which extends through the opposite sides of the guide tube. The connecting assembly includes a moving plate and a guide block. One end of the moving plate is located at the reciprocating screw, which is slidably connected to the moving plate. The guide block is located in the threaded groove of the reciprocating screw, and is slidably connected to the reciprocating screw. The end of the guide block away from the bottom wall of the threaded groove is rotatably connected to the moving plate. The end of the moving plate away from the reciprocating screw extends through the clearance groove into the guide tube. The clamping assembly is connected to the end of the moving plate inside the guide tube.
[0010] By adopting the above technical solution, the reciprocating screw rotates, and under the guidance of the moving plate, the reciprocating screw drives the guide block to move in the slide groove along the length direction of the reciprocating screw. Under the guidance of the clearance, the guide block drives the moving plate to move, and the moving plate drives the clamping assembly to move. Thus, the connecting assembly realizes the connection between the clamping assembly and the reciprocating screw, and also drives the clamping assembly to move.
[0011] Optionally, the clamping assembly includes a first clamping plate and a second clamping plate. The first clamping plate and the movable plate are fixedly connected on the side away from the reciprocating screw. The movable plate has a groove on the side away from the reciprocating screw along the direction towards the first clamping plate. A slider is slidably connected to the movable plate in the groove along the length of the groove. The second clamping plate is located above the first clamping plate and is parallel to the first clamping plate. The end of the second clamping plate near the movable plate is fixedly connected to the slider. A sliding assembly is provided at the movable plate to drive the second clamping plate to slide up and down.
[0012] By adopting the above technical solution, the woven end of the steel wire is placed between the first clamp and the second clamp. The moving component drives the first and second clamps to move into the guide tube, while the sliding component drives the second clamp to move towards the first clamp. The second and first clamps clamp and fix the steel wire. When the moving plate drives the first and second clamps to pass through the other end of the guide tube, the sliding component drives the second clamp to move away from the first clamp, releasing the clamp on the steel wire, so that the steel wire falls off the first clamp and the entire steel wire is woven at this time. Finally, driven by the moving plate, the first and second clamps move to the initial position, so that the clamping component achieves clamping and fixing of the steel wire.
[0013] Optionally, the sliding assembly includes a spring and a triangular plate. The spring is fixed between the slider and the side wall of the slide groove. The extension and contraction direction of the spring is parallel to the length direction of the slide groove. One side of the triangular plate and the upper surface of the second clamping plate are fixedly connected. The triangular plate and the second clamping plate are perpendicular to each other, and the length direction of the triangular plate and the guide tube are parallel.
[0014] By adopting the above technical solution, after the woven end of the steel wire is placed between the first clamping plate and the second clamping plate, as the moving plate drives the first and second clamping plates to gradually move into the guide tube, the inclined surface of one side of the triangular plate first abuts against the side wall of one end of the guide tube, pushing the triangular block to gradually move downward. The triangular block drives the second clamping plate to move, and the second clamping plate and the first clamping plate clamp the steel wire. At the same time, the second clamping plate drives the slider to move, and the spring is compressed. When the moving plate drives the second clamping plate to move out of the guide tube from the other end, the spring gradually releases its elastic force, pushing the slider to move upward. The slider drives the second clamping plate upward, and the second clamping plate pushes the triangular block to gradually move upward. At the same time, the second clamping plate and the first clamping plate release the clamping of the steel wire, allowing the steel wire to fall downward. Thus, the sliding component realizes the function of driving the second clamping plate to move.
[0015] Optionally, a placement groove is provided at one corner of the triangular plate away from the second clamping plate, and a roller is provided in the placement groove of the triangular plate, with the roller and the opposite side walls of the placement groove being rotatably connected.
[0016] By adopting the above technical solution, during the movement of the triangular block inside the guide tube, the roller abuts against the inner wall of the guide tube, and the roller rolls along with the triangular block on the inner wall of the guide tube. The setting of the roller reduces the friction between the triangular block and the inner wall of the guide tube, thus facilitating the movement of the triangular block.
[0017] Optionally, the guide tube is provided with a second support plate at the end away from the steel wire entry point. The second support plate is fixedly connected to the upper surface of the worktable. A push plate is fixedly connected to the side of the second support plate facing the guide tube. The push plate is parallel to the first clamping plate.
[0018] By adopting the above technical solution, after the second clamping plate and the first clamping plate release the steel wire, the moving plate continues to drive the first clamping plate and the second clamping plate to move away from the guide tube, so that the push plate gradually moves between the first clamping plate and the second clamping plate. The push plate blocks the movement of the steel wire, so that the steel wire is detached from the first clamping plate. Thus, the setting of the push plate facilitates the steel wire to detach from the first clamping plate.
[0019] Optionally, a collection shell is fixedly connected to the lower surface of the guide tube along its length, the guide tube and the collection shell are connected at the connection point, an outlet is opened through one side wall of the collection shell, and a closing door is hinged to the collection shell at the outlet.
[0020] By adopting the above technical solution, after the steel wire is separated from the first clamping plate, the steel wire moves freely downward and falls into the collecting shell. The collecting shell collects the steel wire. When the collecting shell is full of steel wire, the sealing door is opened and the steel wire is taken out from the outlet. The design of the collecting shell makes it difficult for the steel wire to stay in the guide tube and affect the movement of the moving plate.
[0021] Optionally, a baffle is horizontally arranged inside the collection shell, with the length direction of the baffle parallel to the collection shell. A through-hole is opened through one side wall of the collection shell, and the baffle extends into the through-hole and is slidably connected to the collection shell. A third support plate is provided on one side of each opposite end of the guide tube. The third support plate is fixedly connected to the upper surface of the worktable, and a moving component that drives the baffle to move is provided at the third support plate.
[0022] By adopting the above technical solution, when the clamping component moves the steel wire inside the guide tube, the baffle isolates the guide tube and the collection shell. When the clamping of the steel wire is released, the moving component moves the baffle outward from the collection shell, allowing the steel wire to move into the collection shell. When the first clamping plate and the second clamping plate move towards their initial positions, the moving component moves the baffle inward from the shell, restoring the baffle to its initial position. By setting the baffle, the steel wire is less likely to come into contact with the steel wires already in the collection shell during its movement into the guide tube.
[0023] Optionally, the movable component includes a threaded sleeve and a screw. The threaded sleeve and the third support plate are rotatably connected to the side facing the guide tube. The length direction of the threaded sleeve is perpendicular to the side wall of the collection shell with the opening. One end of the screw is threadedly connected to the threaded sleeve, and the end of the screw away from the threaded sleeve is fixedly connected to the baffle.
[0024] By adopting the above technical solution, the linkage component drives the threaded sleeve to rotate, and under the guidance of the baffle, it drives the screw to move. The screw drives the baffle to move, thus the moving component realizes the function of driving the baffle to move.
[0025] Optionally, a gear is provided at one of the two threaded sleeves, the threaded sleeve passes through the gear and is fixedly connected to the gear, a rack is fixedly connected to the lower surface of the moving plate near the end of the reciprocating screw, the rack and the gear mesh and are properly matched, a sprocket is provided at both threaded sleeves, the threaded sleeve passes through the adjacent sprocket and is fixedly connected to the sprocket, and a chain is provided on the outer sleeve of the two sprockets, the chain meshes with both.
[0026] By adopting the above technical solution, during the process of the steel wire moving towards the guide tube, the moving plate drives the rack to move, the rack and gear mesh, the rack drives the gear to rotate, the gear drives the threaded sleeve connected to it to rotate, the threaded sleeve drives the sprocket connected to it to rotate, the sprocket drives the chain to rotate, the chain drives the sprocket away from the gear to rotate, and the sprocket drives the threaded sleeve to rotate. Thus, the arrangement of the gear and rack realizes the function of the moving plate driving the threaded sleeve to rotate.
[0027] In summary, this application includes at least one of the following beneficial technical effects:
[0028] 1. The reciprocating screw rotates, driving the connecting component to move along the length of the guide tube. The connecting component drives the clamping component to move, and the clamping component drives the steel wire to move into the guide tube. When the entire steel wire is woven, it falls into the collection shell for collection. The woven steel wire is not easy to tangle, reducing the time that workers need to comb the steel wire, thereby improving the efficiency of the steel wire weaving work.
[0029] 2. The second clamping plate can move up and down by means of a sliding component, eliminating the need to provide separate power for the movement of the second clamping plate, thus saving resources;
[0030] 3. By using gears and racks, there is no need to provide separate power to the moving components, thus saving resources. Attached Figure Description
[0031] Figure 1 This is a schematic diagram of the structure of a guide device for annular diamond wire braiding according to an embodiment of this application;
[0032] Figure 2 This is a cross-sectional view of the clamping assembly in the embodiments of this application;
[0033] Figure 3 yes Figure 2 A magnified view of part A in the middle;
[0034] Figure 4 This is a cross-sectional view of the structure of the collection shell in the embodiments of this application.
[0035] In the diagram, 1. Workbench; 11. Guide tube; 111. Clearance groove; 12. First support plate; 13. Reciprocating screw; 14. Motor; 15. Second support plate; 151. Push plate; 16. Third support plate; 2. Clamping assembly; 21. First clamping plate; 22. Second clamping plate; 3. Connecting assembly; 31. Moving plate; 311. Slide groove; 312. Slider; 32. Guide block; 4. Sliding assembly; 41. Spring; 42. Triangular plate; 421. Placement groove; 422. Roller; 5. Collection shell; 51. Outlet; 52. Closing door; 53. Baffle; 54. Through hole; 6. Moving assembly; 61. Threaded sleeve; 62. Screw; 7. Gear; 71. Rack; 8. Sprocket; 9. Chain. Detailed Implementation
[0036] The following is in conjunction with the appendix Figure 1-4 This application will be described in further detail.
[0037] This application discloses a guide device for annular diamond wire braiding.
[0038] refer to Figure 1 A guide device for annular diamond wire braiding includes a workbench 1. A collection shell 5 is fixedly connected to the upper surface of the workbench 1 along its own length direction. A guide tube 11 is fixedly connected to the upper surface of the collection shell 5 along its own length direction. The guide tube 11 and the collection shell 5 are connected. A motor 14 is provided at one end of the guide tube 11. The motor 14 is connected and fixed to the upper surface of the workbench 1.
[0039] refer to Figure 1 , Figure 2 and Figure 3 First support plates 12 are provided at both ends of one side of the guide block 32. The first support plates 12 are fixedly connected to the upper surface of the worktable 1. The length direction of the first support plates 12 and the guide tube 11 is perpendicular. A reciprocating screw 13 is provided between the two first support plates 12. The reciprocating screw 13 is parallel to the guide tube 11. The two ends of the reciprocating screw 13 are rotatably connected to the two first support plates 12 respectively. The output shaft of the motor 14 passes through the first support plate 12 and is fixedly connected to one end of the reciprocating screw 13. A clearance groove 111 is provided along the length direction of the guide tube 11 near the reciprocating screw 13. The clearance groove 111 passes through the two ends of the guide tube 11. A clamping assembly 2 for clamping steel wire is provided in the guide tube 11. A connecting assembly 3 for connecting the reciprocating screw 13 and the clamping assembly 2 is provided at the reciprocating screw 13.
[0040] The connecting assembly 3 includes a movable plate 31 and a guide block 32. The movable plate 31 is horizontally positioned, with one end of the movable plate 31 located at the reciprocating screw 13. The reciprocating screw 13 passes through the movable plate 31 and is slidably connected to it. The end of the movable plate 31 away from the reciprocating screw 13 extends through the clearance groove 111 into the guide tube 11, where the movable plate 31 and the guide tube 11 are slidably connected. The reciprocating screw 13 is made by creating threaded grooves in both the forward and reverse directions along its own length on its circumferential sidewall, with the forward and reverse threaded grooves intersecting and communicating. One end of the guide block 32 extends into the threaded groove of the reciprocating screw 13 and is slidably connected to it, while the other end of the guide block 32 is rotatably connected to the movable plate 31.
[0041] The clamping assembly 2 includes a first clamping plate 21 and a second clamping plate 22. The first clamping plate 21 is horizontally arranged. The first clamping plate 21 and the moving plate 31 are fixedly connected on the side away from the reciprocating screw 13. The second clamping plate 22 is located above the first clamping plate 21. The first clamping plate 21 and the second clamping plate 22 are parallel. The second clamping plate 22 and the moving plate 31 are slidably connected in the vertical direction.
[0042] The first clamping plate 21 and the second clamping plate 22 are initially located at the end of the guide tube 11 away from the motor 14. The braided end of the steel wire is placed between the first clamping plate 21 and the second clamping plate 22. The motor 14 is started, driving the reciprocating screw 13 to rotate. Guided by the moving plate 31 and the clearance groove 111, the reciprocating screw 13 drives the guide block 32 to move towards the motor 14. Guided by the clearance groove 111, the guide block 32 drives the moving plate 31 to move. The moving plate 31 drives the first clamping plate 21 and the second clamping plate 22 to move, while the second clamping plate 22 moves towards the first clamping plate 21. The first clamping plate 21 and the second clamping plate 22 clamp the steel wire and drive the steel wire to move into the guide tube 11. When the first clamping plate 21 and the second clamping plate 22 move to the end of the guide tube 11 close to the motor 14, as the first clamping plate 21 and the second clamping plate 22 continue to move, the second clamping plate 22 moves away from the first clamping plate 21. The first clamping plate 21 and the second clamping plate 22 release the clamping of the steel wire, and the steel wire gradually separates from the first clamping plate 21. At this time, the entire steel wire is woven and falls into the collection shell 5. The guide block 32 moves away from the motor 14 until the first clamping plate 21 and the second clamping plate 22 return to their initial positions.
[0043] refer to Figure 1 and Figure 2 The movable plate 31 has a groove 311 on the side away from the reciprocating screw 13 along the direction towards the first clamping plate 21. The movable plate 31 is slidably connected to a slider 312 in the groove 311. The slider 312 is fixedly connected to the second clamping plate 22 on the side away from the bottom wall of the groove 311. A sliding component 4 is provided at the movable plate 31 to drive the second clamping plate 22 to slide.
[0044] The sliding assembly 4 includes a spring 41 and a triangular plate 42. The spring 41 is fixed between the slider 312 and the bottom side wall of the slide groove 311. The spring 41 extends and retracts in the vertical direction. One side of the triangular plate 42 is fixedly connected to the upper surface of the second clamping plate 22. The triangular plate 42 and the second clamping plate 22 are perpendicular to each other. The triangular plate 42 and the guide tube 11 are parallel in the length direction. A placement groove 421 is provided at the apex of the triangular plate 42. A roller 422 is rolled in the placement groove 421 of the triangular plate 42.
[0045] After the woven end of the steel wire is placed on the first clamping plate 21, the moving plate 31 drives the first clamping plate 21 and the second clamping plate 22 to move into the guide tube 11. The second clamping plate 22 drives the triangular plate 42 to move. First, one inclined surface of the triangular plate 42 abuts against the side wall of one end of the guide tube 11. As the second clamping plate 22 continues to move, the top wall of the guide tube 11 pushes the triangular block downward. The triangular block drives the second clamping plate 22 downward. The second clamping plate 22 drives the slider 312 to move. The spring 41 is compressed. When the triangular plate 42 moves downward, the slider 312 moves downward. The block enters the guide tube 11 as a whole, and the roller 422 abuts against the upper inner wall of the guide tube 11. At the same time, the triangular block drives the roller 422 to roll along the length of the guide tube 11. When the second clamping plate 22 moves to the end of the guide tube 11 close to the motor 14, the spring 41 gradually releases its elastic force, pushing the slider 312 to move upward. The slider 312 drives the second clamping plate 22 to move, so that the second clamping plate 22 and the first clamping plate 21 are released from fixing the steel wire. Thus, the sliding component 4 realizes the function of driving the second clamping plate 22 to move up and down.
[0046] refer to Figure 1 and Figure 2 A second support plate 15 is provided at one end of the guide tube 11 near the motor 14. The second support plate 15 is fixedly connected to the upper surface of the worktable 1. The length direction of the second support plate 15 is perpendicular to that of the guide tube 11. A push plate 151 is fixedly connected to the side of the second support plate 15 facing the guide tube 11. The push plate 151 is perpendicular to the second support plate 15.
[0047] After the first clamping plate 21 and the second clamping plate 22 release their grip on the steel wire, as the first clamping plate 21 and the second clamping plate 22 continue to move, the push plate 151 gradually enters between the first clamping plate 21 and the second clamping plate 22, and at the same time, the push plate 151 pushes the steel wire to disengage from the first clamping plate 21.
[0048] refer to Figure 2 and Figure 3 A through-hole 54 is provided on the upper end of the side wall away from the closed door 52 of the collection shell 5. The length direction of the through-hole 54 is parallel to that of the collection shell 5. A baffle 53 is provided at the connection between the collection shell 5 and the guide tube 11. The length direction of the baffle 53 is parallel to that of the collection shell 5. The baffle 53 is parallel to the upper surface of the workbench 1. One end of the baffle 53 is inside the through-hole 54 and is slidably connected to the collection shell 5.
[0049] As the steel wire moves into the guide tube 11, the baffle 53 blocks the connection between the collecting shell 5 and the guide tube 11, making it difficult for the steel wire to move inside the collecting shell 5. When the first clamping plate 21 and the second clamping plate 22 move to the end of the guide tube 11 near the motor 14, the baffle 53 gradually moves away from the through-hole 54, allowing the woven steel wire to fall into the collecting shell 5. As the moving plate 31 moves toward the initial position, the baffle 53 moves toward the collecting shell 5, blocking the connection between the collecting shell 5 and the guide tube 11 again.
[0050] refer to Figure 1 , Figure 2 and Figure 3 The guide tube 11 has a third support plate 16 at each of the opposite ends of the opening 54 on the outer side. The third support plate 16 is fixedly connected to the upper surface of the workbench 1. The third support plate 16 is parallel to the side wall of the opening 54 of the collection shell 5. The third support plate 16 is equipped with a moving component 6 that drives the baffle 53 to move.
[0051] The movable component 6 includes a threaded sleeve 61 and a screw 62. The threaded sleeve 61 and the third support plate 16 are rotatably connected to the side facing the collection shell 5. The length direction of the threaded sleeve 61 is perpendicular to the third support plate 16. One end of the screw 62 extends to the through-hole 54 and is fixedly connected to the baffle 53. The end of the screw 62 away from the baffle 53 is threadedly connected to the threaded sleeve 61.
[0052] When the threaded sleeve 61 rotates in the forward direction, it drives the screw 62 to move toward the third support plate 16 under the guidance of the baffle 53. The screw 62 drives the baffle 53 to move, thus realizing the function of the baffle 53 moving away from the collecting shell 5. When the threaded sleeve 61 rotates in the reverse direction, it drives the screw 62 to move toward the collecting shell 5 under the guidance of the baffle 53. The screw 62 drives the baffle 53 to move, thus realizing the function of the baffle 53 moving toward the collecting shell 5.
[0053] refer to Figure 2 and Figure 3 A rack 71 is fixedly connected to the lower surface of the moving plate 31 near the reciprocating screw 13. The length direction of the rack 71 is parallel to the guide tube 11. A gear 7 is provided at the threaded sleeve 61 near the motor 14. The threaded sleeve 61 passes through the gear 7 and is fixedly connected to it. The rack 71 and the gear 7 mesh and are properly matched. A sprocket 8 is provided at each of the two threaded sleeves 61. The threaded sleeve 61 passes through the adjacent sprocket 8 and is fixedly connected to it. A chain 9 is sleeved on the two sprockets 8 and meshes with the chain 9 and the two sprockets 8.
[0054] As the moving plate 31 moves toward the motor 14, it drives the rack 71 to move. The rack 71 meshes with the gear 7. As the moving plate 31 continues to move, the rack 71 drives the gear 7 to rotate. The gear 7 drives the threaded sleeve 61 connected to it to rotate. The threaded sleeve 61 drives the connected sprocket 8 to rotate. The sprocket 8 drives the chain 9 to rotate. The chain 9 drives the sprocket 8 away from the motor 14 to rotate. The sprocket 8 drives the connected threaded sleeve 61 to rotate. There is no need to provide power to the threaded sleeve 61 separately, thus saving resources.
[0055] refer to Figure 1 and Figure 4 The collecting shell 5 has a through-hole 51 on the side wall away from the reciprocating screw 13, and a closing door 52 is hinged to the collecting shell 5 at the through-hole 51. After the collecting shell 5 is full of steel wire, the closing door 52 is opened, the steel wire in the collecting shell 5 is taken out from the through-hole 51, and the closing door 52 is closed.
[0056] The implementation principle of the guide device for annular diamond wire braiding in this application embodiment is as follows: the braided end of the steel wire is placed on the first clamping plate 21, the motor 14 is started, the motor 14 drives the connecting component 3 to move in the direction of the motor 14, the connecting component 3 drives the first clamping plate 21 and the second clamping plate 22 to move. At the same time, during the movement of the first clamping plate 21 and the second clamping plate 22, the sliding component 4 drives the second clamping plate 22 to move in the direction of the first clamping plate 21. The first clamping plate 21 and the second clamping plate 22 clamp and fix the steel wire, and drive the steel wire to move into the guide tube 11. When the steel wire is braided, the first clamping plate 21 and the second clamping plate 22 move to the outside of the guide tube 11 near the motor 14. The first clamping plate 21 and the second clamping plate 22 release the clamp and fixation of the steel wire, so that the steel wire falls into the collection shell 5 below for collection. By guiding the braided end of the steel wire, the steel wire is less likely to get tangled, saving the time used for guiding the steel wire, thereby improving the working efficiency of braiding steel wire.
[0057] The embodiments described in this specific implementation are preferred embodiments of this application and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. A guide device for ring-shaped diamond wire braiding, characterized in that: Includes a workbench (1), on which a guide tube (11) is fixedly connected along its length on the upper surface. First support plates (12) are fixedly connected to both ends of the guide tube (11) on the upper surface of the workbench (1). A reciprocating screw (13) is provided between the two first support plates (12). The reciprocating screw (13) is made by opening threaded grooves in both the forward and reverse directions on the circumferential sidewall of the rod along its length, with the forward and reverse threaded grooves intersecting and communicating. The length of the reciprocating screw (13) is... Parallel to the guide tube (11), the two ends of the reciprocating screw (13) are rotatably connected to the first support plates (12) on both sides respectively. A motor (14) is connected to the upper surface of the worktable (1). The output shaft of the motor (14) passes through the first support plate (12) on one side and is fixedly connected to one end of the reciprocating screw (13). A clamping assembly (2) for clamping the steel wire is provided at the guide tube (11). A connecting assembly (3) for driving the clamping assembly (2) to move along the length direction of the guide tube (11) is provided at the reciprocating screw (13). The guide tube (11) has a clearance groove (111) through one side wall. The clearance groove (111) passes through the opposite sides of the guide tube (11). The connecting component (3) includes a moving plate (31) and a guide block (32). One end of the moving plate (31) is located at the reciprocating screw (13). The reciprocating screw (13) passes through the moving plate (31) and is slidably connected to the moving plate (31). The guide block (32) is located in the thread groove of the reciprocating screw (13). The guide block (32) and the reciprocating screw (13) are slidably connected. The end of the guide block (32) away from the bottom wall of the thread groove is rotatably connected to the moving plate (31). The end of the moving plate (31) away from the reciprocating screw (13) passes through the clearance groove (111) and extends into the guide tube (11). The clamping component (2) and the moving plate (31) are connected at one end inside the guide tube (11). The clamping assembly (2) includes a first clamping plate (21) and a second clamping plate (22). The first clamping plate (21) and the moving plate (31) are fixedly connected on the side away from the reciprocating screw (13). The moving plate (31) has a groove (311) on the side away from the reciprocating screw (13) in the direction toward the first clamping plate (21). The moving plate (31) has a slider (312) slidably connected in the groove (311) along the length of the groove (311). The second clamping plate (22) is above the first clamping plate (21). The second clamping plate (22) is parallel to the first clamping plate (21). The end of the second clamping plate (22) near the moving plate (31) is fixedly connected to the slider (312). A sliding assembly (4) is provided at the moving plate (31) to drive the second clamping plate (22) to slide up and down. The guide tube (11) is fixedly connected to a collection shell (5) along its length direction on its lower surface. The guide tube (11) and the collection shell (5) are connected at the connection point. A take-out port (51) is opened through one side wall of the collection shell (5). A closed door (52) is hinged at the take-out port (51) of the collection shell (5). A baffle (53) is horizontally arranged inside the collection shell (5). The length direction of the baffle (53) is parallel to that of the collection shell (5). A through hole (54) is opened through one side wall of the collection shell (5). The baffle (53) extends into the through hole (54) and is slidably connected to the collection shell (5). A third support plate (16) is provided on one side of each end of the guide tube (11). The third support plate (16) is fixedly connected to the upper surface of the workbench (1). A moving component (6) that drives the baffle (53) to move is provided at the third support plate (16).
2. The guide device for annular diamond wire braiding according to claim 1, characterized in that: The sliding assembly (4) includes a spring (41) and a triangular plate (42). The spring (41) is fixed between the slider (312) and the side wall of the slide groove (311). The extension and retraction direction of the spring (41) is parallel to the length direction of the slide groove (311). One side of the triangular plate (42) is fixedly connected to the upper surface of the second clamping plate (22). The triangular plate (42) and the second clamping plate (22) are perpendicular to each other, and the length direction of the triangular plate (42) is parallel to that of the guide tube (11).
3. The guide device for annular diamond wire braiding according to claim 2, characterized in that: The triangular plate (42) has a placement groove (421) at one corner away from the second clamping plate (22). The triangular plate (42) has a roller (422) in the placement groove (421). The roller (422) and the opposite side walls of the placement groove (421) are rotatably connected.
4. The guide device for annular diamond wire braiding according to claim 3, characterized in that: The guide tube (11) is provided with a second support plate (15) at the end away from the steel wire entry point. The second support plate (15) is fixedly connected to the upper surface of the workbench (1). A push plate (151) is fixedly connected to the side of the second support plate (15) facing the guide tube (11). The push plate (151) is parallel to the first clamping plate (21).
5. A guide device for annular diamond wire braiding according to claim 4, characterized in that: The moving component (6) includes a threaded sleeve (61) and a screw (62). The threaded sleeve (61) and the third support plate (16) are rotatably connected to the side facing the guide tube (11). The length direction of the threaded sleeve (61) is perpendicular to the side wall of the collection shell (5) with the opening (54). One end of the screw (62) is threadedly connected to the threaded sleeve (61), and the end of the screw (62) away from the threaded sleeve (61) is fixedly connected to the baffle (53).
6. A guide device for annular diamond wire braiding according to claim 5, characterized in that: A gear (7) is provided at one of the two threaded sleeves (61). The threaded sleeve (61) passes through the gear (7) and is fixedly connected to the gear (7). A rack (71) is fixedly connected to the lower surface of the moving plate (31) near the end of the reciprocating screw (13). The rack (71) and the gear (7) mesh and are properly matched. A sprocket (8) is provided at each of the two threaded sleeves (61). The threaded sleeve (61) passes through the adjacent sprocket (8) and is fixedly connected to the sprocket (8). A chain (9) is sleeved on both sprockets (8). The chain (9) meshes with both of them.