A space-saving wire winding machine for diamond wire for stone linear saw
By designing a diamond wire winding machine specifically for stone wire saws, a rotating component and a wire feeding mechanism are used to achieve uniform wire output and tension adjustment. This solves the problem of mismatch between the wire take-up and feed reels in stone wire saws, improves winding efficiency and quality, and adapts to different specifications of feed reels.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- QUANZHOU PINHE PRECISION TECH CO LTD
- Filing Date
- 2025-08-05
- Publication Date
- 2026-06-02
AI Technical Summary
The winding and unwinding reels of stone wire saws on the market are not well-matched, resulting in high manual winding intensity, low efficiency, and unreliable winding quality.
Design a space-saving diamond wire winding machine for stone wire saws, including a wire feeding device and a wire take-up device. The first and second rotating components drive the wire feeding wheel and the wire take-up wheel to rotate. Combined with the first wire laying mechanism and the tension mechanism, uniform wire output and tension adjustment are achieved. The straightening wheel and the redirecting wheel ensure uniform wire distribution.
It improves winding efficiency and quality, has a compact structure, saves space, adapts to different specifications of pay-off reels, reduces the intensity of manual winding, and improves the degree of automation in winding.
Smart Images

Figure CN224312981U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of stone wire saws, and in particular to a space-saving diamond wire winding machine specifically for stone wire saws. Background Technology
[0002] The descriptions in this section provide background information related to this disclosure only and do not constitute prior art. The take-up and release reel is a heavy-duty component of the take-up and release system in a stone wire saw. This reel is used to continuously release new diamond wire to participate in the cutting of stone. However, commercially available reels are often incompatible with the take-up and release reels on the wire saw and cannot be used directly. The diamond wire on the purchased reel needs to be wound onto the take-up and release reel. Manual winding is inefficient, requires high strength, and the winding quality cannot be guaranteed. Summary of the Invention
[0003] In view of this, this application provides a space-saving diamond wire winding machine for stone wire saws, which can improve winding efficiency and winding quality.
[0004] To achieve the above objectives, this application employs the following technical solution:
[0005] A space-saving diamond wire winding machine for stone wire saws, characterized in that: it includes a support platform, a support frame fixedly mounted on the support platform, a wire feeding device mounted on the support frame and located at the front, and a wire take-up device mounted on the support frame and located at the rear; the wire feeding device includes a first rotating component and a first wire laying mechanism; the wire take-up device includes a tension mechanism, a second wire laying mechanism, and a second rotating component;
[0006] The first rotating assembly drives the pay-off reel to rotate, causing the pay-off reel to continuously pay off the line. The first arranging mechanism is located above the first rotating assembly. The first arranging mechanism includes a first connecting arm, a first arranging wheel rotatably connected to the first connecting arm, and a first arranging drive assembly for driving the first connecting arm and the first arranging wheel to move together in a translational motion. The axis of the first arranging wheel is perpendicular to the axis of the pay-off reel, and the first arranging drive assembly moves the first arranging wheel in a direction parallel to the axis of the pay-off reel. The second rotating assembly is located on the opposite side of the first rotating assembly and drives the take-up reel to rotate, causing the take-up reel to continuously collect the line. The tension mechanism includes a tension wheel and a tension drive assembly for driving the tension wheel to move at an offset. The tension wheel's axis is perpendicular to the take-up wheel's axis. The second arranging mechanism is located below the tension mechanism and includes a second connecting arm, a second arranging wheel rotatably connected to the second connecting arm, and a second arranging drive assembly for driving the second connecting arm and the second arranging wheel to move together. The second arranging wheel's axis is perpendicular to the take-up wheel's axis, and the second arranging drive assembly moves the second arranging wheel in a direction parallel to the take-up wheel's axis. The support frame is also equipped with at least one first redirecting wheel with a vertically oriented axis, allowing the line to travel from the pay-off device side to the take-up device side. After exiting the pay-off wheel, the line passes through the first arranging wheel, the first redirecting wheel, the tension wheel, and the second arranging wheel before connecting to the take-up wheel.
[0007] The aforementioned space-saving diamond wire winding machine for stone wire saws utilizes a first rotating component and a second rotating component to drive the wire feeding and take-up reels to rotate. A first wire feeding mechanism can evenly feed the wire, and a tension wheel can adjust the wire tension. A second wire feeding mechanism can evenly distribute the wire on the take-up reel. Thus, the winding machine can improve winding efficiency and quality. Furthermore, the take-up and feeding devices in this application are located on the front and rear sides of the support frame, resulting in a compact layout and small structural size, further saving space.
[0008] In some embodiments, the first rotating assembly includes a first rotating component and a second rotating component; the first rotating component includes a first rotating shaft rotatably connected to a support platform, a first cone fixedly installed at one end of the first rotating shaft, and a first motor for driving the first rotating shaft to rotate; the second rotating component includes a movable base, a second rotating shaft, a second cone, and a telescopic drive component; the movable base is located on the opposite side of the first cone and is slidably connected to the frame along the axis parallel to the first rotating shaft via a first slide rail; the second rotating shaft is rotatably connected to the movable base and coaxially arranged with the first rotating shaft; the second cone is fixedly installed on the second rotating shaft and is arranged opposite to the first cone; the telescopic drive component is connected to the movable base for driving the movable base to move along the axis parallel to the first rotating shaft; during the movement, the telescopic drive component can drive the second cone to move closer to or away from the first cone; when the second cone and the first cone are close together, the second cone and the first cone clamp the wire feeding wheel, which can rotate together with the first cone.
[0009] The second cone end is movable, which makes it easy to disassemble and assemble the pay-off reel. Moreover, the cone-shaped installation makes it easy to position and match pay-off reels of various specifications, providing good flexibility.
[0010] In some embodiments, the telescopic drive component is a hand-cranked lead screw, and the first slide rail is a dovetail slide rail.
[0011] In some embodiments, the second rotating assembly includes a fixed bracket fixedly mounted on a support platform, a bearing housing fixedly mounted on the fixed bracket, and a second motor for driving the shaft of the bearing housing to rotate. The end of the shaft of the bearing housing is provided with a tapered portion, and one end of the take-up reel mates with the tapered surface of the tapered portion, and the two are detachably fixedly connected by bolts. Where the take-up reel requires high precision, it is chosen to be directly fixed to the internal bearing housing.
[0012] In some embodiments, the first connecting arm is further provided with a correction wheel located below the first wire feeding wheel. The correction wheel is rotatably connected to the connecting rod, and the axis of the correction wheel is parallel to the axis of the feeding wheel. The upper end of the connecting rod is fixedly provided with a connecting shaft and is rotatably connected to the first connecting arm through the connecting shaft. The axis of the connecting shaft is parallel to the axis of the first wire feeding wheel. The first connecting arm is also provided with an encoder connected to the connecting shaft for detecting the rotation angle of the connecting shaft. After the wire comes out from the feeding wheel, it first passes through the correction wheel and then enters the first wire feeding wheel. The space-saving diamond wire winding machine for stone wire saws also includes a control module. The control module is connected to the first wire feeding drive assembly and the encoder. When the correction wheel deviates, the control module controls the wire feeding drive assembly to work according to the angle change of the connecting shaft obtained by the encoder, thereby controlling the speed of the first wire feeding wheel to correct the deviation.
[0013] When the lines on the pay-off reel are unevenly distributed, the correction reel will wobble and tilt. The offset angle can be obtained through an encoder, and the correction can be achieved by adjusting the moving speed of the first pay-off reel. For example, if the first pay-off reel moves to the left and the correction reel shifts to the right, the moving speed of the first pay-off reel can be appropriately reduced to keep the correction reel in a more vertical position.
[0014] In some embodiments, the tension drive assembly includes a mounting plate fixed to a support frame. A second slide rail extending along the axis of the parallel take-up reel is fixedly mounted on the mounting plate. The tension wheel is rotatably connected to a slider, which is slidably connected to the second slide rail. A tension spring is also connected between the slider and the mounting plate, causing the tension wheel to continuously tighten the line. The tension wheel uses a tension spring to provide a constant tension value; this choice is cost-effective and structurally simple.
[0015] In some embodiments, a second deflector wheel located below the second winding wheel is rotatably connected to the second connecting arm. The axis of the second deflector wheel is parallel to the axis of the take-up wheel. After passing the second winding wheel, the line first passes through the second deflector wheel and then connects to the take-up wheel.
[0016] In some embodiments, there are two first steering wheels, one located on the front side of the support frame and the other located on the rear side of the support frame.
[0017] As can be seen from the above technical solution, this application has at least the following advantages and positive effects:
[0018] This application discloses a space-saving diamond wire winding machine specifically for stone wire saws. A first rotating component and a second rotating component drive the wire feeding and take-up reels to rotate. A first wire feeding mechanism ensures even wire feeding, and a tension wheel adjusts the wire tension. A second wire feeding mechanism evenly distributes the wire onto the take-up reel. This winding machine improves winding efficiency and quality. Furthermore, the take-up and feeding devices are located on the front and rear sides of the support frame, resulting in a compact layout and small structural dimensions, further saving space. Attached Figure Description
[0019] Figure 1 This is a structural illustration of an embodiment of this application. Figure 1 ;
[0020] Figure 2 This is a structural illustration of an embodiment of this application. Figure 2 ;
[0021] Figure 3 This is a cross-sectional view of the first rotating component in an embodiment of this application;
[0022] Figure 4This is a cross-sectional view of the second rotating component in an embodiment of this application;
[0023] Figure 5 This is a schematic diagram of the structure of the first cable routing mechanism and the correction wheel in the embodiments of this application;
[0024] Figure 6 This is a schematic diagram of the tension mechanism in the embodiments of this application.
[0025] Labeling Explanation: 1. Support platform; 11. Support frame; 2. First rotating assembly; 21. First rotating shaft; 22. First cone head; 23. First motor; 24. Movable base; 25. Second rotating shaft; 26. Second cone head; 27. Telescopic drive component; 28. First slide rail; 3. First cable laying mechanism; 31. First connecting arm; 32. First cable laying wheel; 33. First cable laying drive assembly; 4. First redirecting wheel; 5. Tension mechanism; 51. Tension wheel; 52. Tension drive assembly 521. Mounting plate; 522. Second slide rail; 523. Slider; 6. Second cable laying mechanism; 61. Second connecting arm; 62. Second cable laying wheel; 63. Second cable laying drive assembly; 7. Second rotating assembly; 71. Fixed bracket; 72. Bearing box; 721. Shaft core; 73. Second motor; 8. Cable feeding wheel; 9. Cable taking wheel; 101. Straightening wheel; 102. Connecting rod; 103. Connecting shaft; 104. Encoder; 105. Second redirecting wheel; 106. Cable. Detailed Implementation
[0026] To make the objectives, technical solutions, and advantages of this application clearer, the application will be described in further detail below with reference to the accompanying drawings. The terminology used in the embodiments section of this application is only for explaining specific embodiments and is not intended to limit the application.
[0027] See Figures 1 to 6 This application provides a space-saving diamond wire winding machine for stone wire saws, including a support platform 1, a support frame 11 fixedly mounted on the support platform 1, a wire feeding device mounted on the support frame 11 and located at the front, and a wire take-up device mounted on the support frame 11 and located at the rear; the wire feeding device includes a first rotating component 2 and a first wire laying mechanism 3; the wire take-up device includes a tension mechanism 5, a second wire laying mechanism 6, and a second rotating component 7;
[0028] The first rotating component 2 drives the pay-off reel 8 to rotate, so that the pay-off reel 8 continuously pays out line 106; the first arranging mechanism 3 is disposed above the first rotating component 2, and the first arranging mechanism 3 includes a first connecting arm 31, a first arranging wheel 32 rotatably connected to the first connecting arm 31, and a first arranging drive component 33 for driving the first connecting arm 31 and the first arranging wheel 32 to move together in a translational motion. The axis of the first arranging wheel 32 is perpendicular to the axis of the pay-off reel 8, and the first arranging drive component 33 moves the first arranging wheel 32 in a direction parallel to the axis of the pay-off reel 8; the second rotating component 7 is disposed on the opposite side of the first rotating component 2, and drives the take-up reel 9 to rotate, so that the take-up reel 9 continuously collects line 106; the tension mechanism 5 includes a tension wheel 51 and a tension drive component 52 for driving the tension wheel 51 to move in a deflection direction. The axis of tension wheel 51 is perpendicular to the axis of take-up wheel 9; the second arranging mechanism 6 is located below tension mechanism 5, and the second arranging mechanism 6 includes a second connecting arm 61, a second arranging wheel 62 rotatably connected to the second connecting arm 61, and a second arranging drive assembly 63 for driving the second connecting arm 61 and the second arranging wheel 62 to move together. The axis of the second arranging wheel 62 is perpendicular to the axis of take-up wheel 9, and the second arranging drive assembly 63 moves the second arranging wheel 62 in a direction parallel to the axis of take-up wheel 9; the support frame 11 is also provided with at least one first redirecting wheel 4 with its axis vertically arranged, so that the line 106 can be routed from the pay-off device side to the take-up device side; after the line 106 comes out from pay-off wheel 8, it passes through the first arranging wheel 32, the first redirecting wheel 4, tension wheel 51, and the second arranging wheel 62 and connects to take-up wheel 9.
[0029] This diamond wire winding machine for stone wire saws can drive the wire feeding wheel 8 and the wire taking wheel 9 to rotate through the first rotating component 2 and the second rotating component 7. The first wire feeding mechanism 3 can feed the wire evenly. The tension wheel 51 can adjust the tension of the wire 106. The second wire feeding mechanism 6 can evenly distribute the wire 106 on the wire taking wheel 9. Thus, the winding machine can improve the winding efficiency and winding quality. Moreover, the wire taking device and the wire feeding device in this application are respectively located on the front and rear sides of the support frame 11, which is compact and has a small structural size, thus saving more space.
[0030] The first rotating assembly 2 includes a first rotating component and a second rotating component; the first rotating component includes a first rotating shaft 21 rotatably connected to the support platform 1, a first conical head 22 fixedly installed at one end of the first rotating shaft 21, and a first motor 23 for driving the first rotating shaft 21 to rotate; the second rotating component includes a movable base 24, a second rotating shaft 25, a second conical head 26, and a telescopic drive component 27; the movable base 24 is located on the opposite side of the first conical head 22 and is slidably connected to the frame along the axis parallel to the first rotating shaft 21 via a first slide rail 28; the second rotating shaft 25... The second cone 26 is rotatably connected to the movable base 24 and coaxially arranged with the first rotating shaft 21. The second cone 26 is fixedly installed on the second rotating shaft 25 and is arranged opposite to the first cone 22. The telescopic drive component 27 is connected to the movable base 24 to drive the movable base 24 to move along the axis parallel to the first rotating shaft 21. During the movement, the telescopic drive component 27 can drive the second cone 26 to move closer to or away from the first cone 22. When the second cone 26 and the first cone 22 are close to each other, the second cone 26 and the first cone 22 clamp the wire feeding wheel 8 and drive it to rotate together.
[0031] The second cone 26 is movable, which makes it easy to disassemble and assemble the wire feeding reel 8. Moreover, the cone installation makes it easy to position and match various specifications of wire feeding reels 8, and it has good flexibility.
[0032] The telescopic drive component 27 is a hand-cranked lead screw, and the first slide rail 28 is a dovetail-shaped slide rail.
[0033] The second rotating assembly 7 includes a fixed bracket 71 fixedly mounted on the support platform 1, a bearing housing 72 fixedly mounted on the fixed bracket 71, and a second motor 73 for driving the shaft core 721 of the bearing housing 72 to rotate. The end of the shaft core 721 of the bearing housing 72 is provided with a tapered portion, and one end of the take-up reel 9 mates with the tapered surface of the tapered portion, and the two are detachably fixedly connected by bolts. The take-up reel 9 requires high precision and is therefore directly fixed to the internal bearing housing 72.
[0034] The first connecting arm 31 is also provided with a guide wheel 101 located below the first wire feeding wheel 32. The guide wheel 101 is rotatably connected to the connecting rod 102, and the axis of the guide wheel 101 is parallel to the axis of the wire feeding wheel 8. A connecting shaft 103 is fixedly provided at the upper end of the connecting rod 102 and is rotatably connected to the first connecting arm 31 through the connecting shaft 103. The axis of the connecting shaft 103 is parallel to the axis of the first wire feeding wheel 32. The first connecting arm 31 is also provided with a device connected to the connecting shaft 103 for detecting the connecting shaft. The encoder 104 measures the rotation angle of the 103. After the wire 106 comes out from the feed wheel 8, it first passes through the correction wheel 101 and then enters the first wire winding wheel 32. The space-saving diamond wire winding machine for stone wire saws also includes a control module. The control module is connected to the first wire winding drive assembly 33 and the encoder 104. When the correction wheel 101 deviates, the control module controls the wire winding drive assembly to work according to the angle change of the connecting shaft 103 obtained by the encoder 104, thereby controlling the speed of the first wire winding wheel 32 to correct the deviation.
[0035] When the lines 106 on the pay-off reel 8 are unevenly distributed, the correction reel 101 will wobble and tilt. The offset angle can be obtained by the encoder 104, and the correction can be performed by adjusting the moving speed of the first pay-off reel 32. For example, when the first pay-off reel 32 moves to the left, the correction reel 101 will shift to the right. In this case, the moving speed of the first pay-off reel 32 can be appropriately reduced so that the correction reel 101 remains in a relatively vertical state.
[0036] The tension drive assembly 52 includes a mounting plate 521 fixed to the support frame 11. A second slide rail 522 extending along the axis of the parallel take-up reel 9 is fixedly mounted on the mounting plate 521. The tension wheel 51 is rotatably connected to the slider 523, and the slider 523 is slidably connected to the second slide rail 522. A tension spring is also connected between the slider 523 and the mounting plate 521, so that the tension wheel 51 continuously tensions the line 106. The tension wheel 51 uses a tension spring to provide a constant tension value. Choosing a tension spring is cost-effective and has a simple structure.
[0037] The second connecting arm 61 is also rotatably connected to a second deflector 105 located below the second winding wheel 62. The axis of the second deflector 105 is parallel to the axis of the take-up wheel 9. After passing the second winding wheel 62, the line 106 first passes through the second deflector 105 and then connects to the take-up wheel 9.
[0038] In some embodiments, there are two first steering wheels 4, one located on the front side of the support frame 11 and the other located on the rear side of the support frame 11.
[0039] The following is a brief description of the working process and usage of a space-saving diamond wire winding machine for stone wire saws, as described in the above embodiment:
[0040] The pay-off reel 8 and pay-off wheel 8 are respectively installed on the first rotating assembly 2 and the second rotating assembly 7. During the installation process, the first rotating assembly 2 is manually rotated by turning the hand crank screw, which drives the second cone head 26 to move closer to the first cone head 22, thereby clamping the pay-off reel 8. The first motor 23 rotates, which can continuously pay off the line 106 with the pay-off reel 8. The line 106 on the pay-off reel 8 passes through the correction wheel 101, the first line-laying wheel 32, the two first deflecting wheels 4, the tension wheel 51, the second line-laying wheel 62 and the second deflecting wheel 105 in sequence, and finally connects to the take-up reel 9. The second motor 73 rotates, which drives the take-up reel 9 to rotate continuously, and continuously collects the line 106 onto the take-up reel 9.
[0041] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the embodiments of this application, and are not intended to limit them; although the embodiments of this application have been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the foregoing embodiments, or make equivalent substitutions for some or all of the technical features; and these modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this application.
Claims
1. A space-saving wire winding machine for a diamond wire dedicated to stone linear sawing, characterized in that: It includes a support platform (1), a support frame (11) fixedly mounted on the support platform (1), a wire feeding device mounted on the support frame (11) and located on the front side, and a wire take-up device mounted on the support frame (11) and located on the rear side; the wire feeding device includes a first rotating component (2) and a first wire laying mechanism (3); the wire take-up device includes a tension mechanism (5), a second wire laying mechanism (6), and a second rotating component (7); The first rotating component (2) is used to drive the feed reel (8) to rotate, so that the feed reel (8) continuously feeds out the line (106); the first tracing mechanism (3) is disposed above the first rotating component (2), and the first tracing mechanism (3) includes a first connecting arm (31), a first tracing wheel (32) rotatably connected to the first connecting arm (31), and a first tracing drive component (33) for driving the first connecting arm (31) and the first tracing wheel (32) to move together in translation. The axis of the wheel (32) is perpendicular to the axis of the pay-off wheel (8), and the first wire-laying drive assembly (33) moves the first wire-laying wheel (32) along a direction parallel to the axis of the pay-off wheel (8); the second rotating assembly (7) is located on the opposite side of the first rotating assembly (2) and is used to drive the take-up wheel (9) to rotate, so that the take-up wheel (9) continuously collects the wire (106); the tension mechanism (5) includes a tension wheel (51) and a tension drive assembly (52) for driving the tension wheel (51) to deflect. The axis of the tension wheel (51) is perpendicular to the axis of the take-up wheel (9); the second rigging mechanism (6) is located below the tension mechanism (5), and the second rigging mechanism (6) includes a second connecting arm (61), a second rigging wheel (62) rotatably connected to the second connecting arm (61), and a second rigging drive assembly (63) for driving the second connecting arm (61) and the second rigging wheel (62) to move together in translational motion, wherein the axis of the second rigging wheel (62) is perpendicular to the axis of the take-up wheel (9). The second wire-laying drive assembly (63) moves the second wire-laying wheel (62) along the axis parallel to the take-up wheel (9); the support frame (11) is also provided with at least one first deflector wheel (4) with its axis vertically arranged, so that the wire (106) can be routed from the wire-laying device side to the take-up device side; after the wire (106) comes out from the wire-laying wheel (8), it passes through the first wire-laying wheel (32), the first deflector wheel (4), the tension wheel (51), the second wire-laying wheel (62) and connects to the take-up wheel (9).
2. The space-saving diamond wire winding machine for stone wire saws according to claim 1, characterized in that: The first rotating assembly (2) includes a first rotating component and a second rotating component; the first rotating component includes a first rotating shaft (21) rotatably connected to the support platform (1), a first cone (22) fixedly installed at one end of the first rotating shaft (21), and a first motor (23) for driving the first rotating shaft (21) to rotate; the second rotating component includes a movable base (24), a second rotating shaft (25), a second cone (26), and a telescopic drive component (27); the movable base (24) is located on the opposite side of the first cone (22) and is slidably connected to the frame along the axis parallel to the first rotating shaft (21) via a first slide rail (28), and the second rotating shaft (25) rotates. The second cone (26) is fixedly mounted on the second rotating shaft (25) and is opposite to the first cone (22). The telescopic drive component (27) is connected to the movable base (24) and is used to drive the movable base (24) to move along the axis parallel to the first rotating shaft (21). During the movement, the telescopic drive component (27) can drive the second cone (26) to move closer to or away from the first cone (22). When the second cone (26) and the first cone (22) are close to each other, the second cone (26) and the first cone (22) clamp the wire feeding wheel (8) and can rotate it together.
3. The space-saving diamond wire winding machine for stone wire saws according to claim 2, characterized in that: The telescopic drive component (27) is a hand-cranked lead screw, and the first slide rail (28) is a dovetail slide rail.
4. The space saving diamond wire winding machine for stone wire saw as claimed in claim 1 wherein: The second rotating assembly (7) includes a fixed bracket (71) fixedly mounted on the support platform (1), a bearing housing (72) fixedly mounted on the fixed bracket (71), and a second motor (73) for driving the shaft core (721) of the bearing housing (72) to rotate. The end of the shaft core (721) of the bearing housing (72) is provided with a tapered portion. One end of the take-up reel (9) is engaged with the tapered surface of the tapered portion and the two are detachably fixedly connected by bolts.
5. The space saving diamond wire winding machine for stone wire saw as claimed in claim 1 wherein: The first connecting arm (31) is also provided with a correction wheel (101) located below the first wire feeding wheel (32). The correction wheel (101) is rotatably connected to the connecting rod (102). The axis of the correction wheel (101) is parallel to the axis of the wire feeding wheel (8). The upper end of the connecting rod (102) is fixedly provided with a connecting shaft (103) and is rotatably connected to the first connecting arm (31) through the connecting shaft (103). The axis of the connecting shaft (103) is parallel to the axis of the first wire feeding wheel (32). The first connecting arm (31) is also provided with a detection device connected to the connecting shaft (103). The encoder (104) of the rotation angle of the connecting shaft (103) is used. After the line (106) comes out from the feed wheel (8), it first passes through the correction wheel (101) and then enters the first wire winding wheel (32). The space-saving stone wire saw special diamond wire winding machine also includes a control module. The control module is connected to the first wire winding drive assembly (33) and the encoder (104). When the correction wheel (101) deviates, the control module controls the wire winding drive assembly to work according to the angle change of the connecting shaft (103) obtained by the encoder (104), thereby controlling the speed of the first wire winding wheel (32) to correct the deviation.
6. The space saving diamond wire winding machine for stone wire saw as claimed in claim 1 wherein: The tension drive assembly (52) includes a mounting plate (521) fixed on a support frame (11). A second slide rail (522) extending along the axis of the parallel take-up wheel (9) is fixedly provided on the mounting plate (521). The tension wheel (51) is rotatably connected to the slider (523). The slider (523) is slidably connected to the second slide rail (522). A tension spring is also connected between the slider (523) and the mounting plate (521) so that the tension wheel (51) continuously tensions the line (106).
7. The space saving diamond wire winding machine for stone wire saw as claimed in claim 1 wherein: The second connecting arm (61) is also rotatably connected to a second deflector (105) located below the second spool (62). The axis of the second deflector (105) is parallel to the axis of the take-up spool (9). After the line (106) passes through the second spool (62), it first passes through the second deflector (105) and then connects with the take-up spool (9).
8. The space saving diamond wire winding machine for stone wire saw as claimed in claim 1 wherein: There are two first steering wheels (4), one located on the front side of the support frame (11) and the other located on the rear side of the support frame (11).