Multi-dimensional cutting assembly
By using the lifting mechanism of the multi-dimensional cutting components to drive the moving roller components to move, the cutting line angle can be changed, which solves the problems of difficult material fixation and low cutting accuracy in stone processing of wire cutting machines, improves the cutting speed and reduces maintenance costs.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- TANGSHAN BOSUO SUOYUAN ELECTRONIC EQUIP CO LTD
- Filing Date
- 2025-06-11
- Publication Date
- 2026-05-19
AI Technical Summary
Existing wire cutting machines have problems in stone processing, such as difficulty in fixing materials, inconvenience in frame adjustment, low cutting accuracy, and high maintenance costs.
The multi-dimensional cutting component is adopted. The first and second lifting mechanisms drive the roller assembly to move up and down, forming a change in the tilt angle of the cutting line, thereby realizing the swing cutting of the material and avoiding the overall tilting of the material platform or frame.
It improves cutting speed and precision, reduces the difficulty of material fixing and maintenance costs, and simplifies the frame adjustment process.
Smart Images

Figure CN224255728U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of wire cutting equipment technology, and in particular to a multi-dimensional cutting component. Background Technology
[0002] Wire cutting machines are currently used in the stone processing industry. The cutting machine uses a lifting mechanism to feed the material to be cut into the roller assembly with the cutting wire wound on it. In order to increase the cutting speed, the material platform is oscillating or the roller assembly is tilted as a whole so that the cutting wire cuts the material at an angle. This method has problems such as difficulty in fixing the material, inconvenience in adjusting the frame, large internal space requirements of the machine, impact on cutting accuracy, and high maintenance costs. Summary of the Invention
[0003] To solve the above-mentioned technical problems, the present invention adopts the following technical solution.
[0004] This utility model provides a multi-dimensional cutting component, including a roller frame, a first lifting mechanism, a second lifting mechanism, a first moving roller assembly, a second moving roller assembly, a first fixed roller assembly, and a second fixed roller assembly. The roller frame is a square frame structure. The first lifting mechanism is located at the bottom left side of the roller frame and connected to the first moving roller assembly, and the first lifting mechanism can drive the first moving roller assembly to move up and down on the left side of the roller frame. The second lifting mechanism is located at the bottom right side of the roller frame and connected to the second moving roller assembly, and the second lifting mechanism can drive the second moving roller assembly to move up and down on the right side of the roller frame. The first fixed roller assembly is located at the upper left side of the roller frame, and the second fixed roller assembly is located at the upper right side of the roller frame.
[0005] Furthermore, the first lifting mechanism includes a lifting motor, a lifting screw, and a lifting frame. The lifting motor is disposed on the side of the roller frame, the lifting screw is poweredly connected to the lifting motor, and the lifting frame is disposed on the lifting screw via a nut corresponding to the lifting screw, and can slide up and down the lifting screw by rotating the lifting screw.
[0006] Furthermore, the first lifting mechanism also includes a lifting slide rail and a lifting slider, the lifting slider being disposed inside the lifting frame and the lifting slide rail being disposed on the side of the roller frame.
[0007] Furthermore, the first lifting mechanism and the second lifting mechanism have the same structure and are mirror images of each other on the left and right sides of the bottom end of the roller frame.
[0008] Furthermore, the first moving roller assembly, the second moving roller assembly, the first fixed roller assembly, and the second fixed roller assembly each include a roller bracket, a roller, and a roller motor. The roller is rotatably mounted on the roller bracket, and the roller motor is powered by the roller.
[0009] Furthermore, the multi-dimensional cutting component also includes a cutting line, a wire feeding component, and a wire take-up component. The wire feeding component and the wire take-up component are arranged on the left and right sides of the roller frame. The cutting line is wound around the first moving roller component, the second moving roller component, the first fixed roller component, and the second fixed roller component, with one end connected to the wire feeding component and the other end connected to the wire take-up component.
[0010] Furthermore, the wire feeding assembly includes a wire inlet adjustment assembly, a wire feeding reel, a wire feeding motor, a wire feeding tension wheel, a wire feeding tension motor, and a wire laying assembly. The wire inlet adjustment assembly is located on the upper side of the roller frame. The wire feeding motor is poweredly connected to the wire feeding reel. The wire feeding tension motor is poweredly connected to the wire feeding tension wheel. The wire laying assembly is located on the side of the roller frame and above the wire feeding reel.
[0011] Furthermore, the wire entry adjustment assembly includes a wire entry wheel, an adjustment motor, a wire entry screw, and a wire entry slider. The adjustment motor is poweredly connected to the wire entry screw. The wire entry slider is mounted on the wire entry screw via a nut corresponding to the wire entry screw. The wire entry wheel is mounted on the wire entry slider. When the wire entry screw rotates, the wire entry slider can move left and right on the wire entry screw.
[0012] Furthermore, the cable laying assembly includes a cable laying motor, a cable laying screw, a cable laying slide rail, a cable laying nut, a cable laying slider, and a cable laying wheel. The cable laying motor is poweredly connected to the cable laying screw. The cable laying nut is sleeved on the cable laying screw and connected to the cable laying slide rail. The cable laying slider is mounted on the roller frame and slidably mounted on the cable laying slide rail. The cable laying wheel is mounted on the cable laying slide rail.
[0013] Furthermore, the take-up assembly has the same structure as the pay-off assembly, and is mirror-image positioned on the other side of the roller frame.
[0014] The present invention achieves leftward tilting of the cutting line by the downward movement of the first moving roller assembly and the upward movement of the second moving roller assembly. Conversely, when the first moving roller assembly moves upward, the second moving roller assembly moves downward, causing the cutting line to tilt to the right. When this assembly is installed on a cutting device, it can achieve swaying cutting of the material angle without the need for a material platform to sway or the entire cutting frame to tilt, thus accelerating the cutting process. Attached Figure Description
[0015] Figure 1 A schematic diagram of a three-dimensional structure of a multi-dimensional cutting component provided by this utility model. Figure 1 .
[0016] Figure 2 A schematic diagram of a three-dimensional structure of a multi-dimensional cutting component provided by this utility model. Figure 2 .
[0017] The components include: roller frame-1, first lifting mechanism-2, lifting motor-21, lifting screw-22, lifting frame-23, lifting slide rail-24, lifting slider-25, second lifting mechanism-3, first moving roller assembly-4, roller bracket-41, roller-42, roller motor-43, second moving roller assembly-5, first fixed roller assembly-6, second fixed roller assembly-7, cutting wire-8, wire feeding assembly-9, and wire input adjustment. Section component-91, wire feeding wheel-911, adjusting motor-912, wire feeding screw-913, wire feeding slider-914, wire feeding wheel-92, wire feeding motor-93, wire feeding tension wheel-94, wire feeding tension motor-95, wire laying assembly-96, wire laying motor-961, wire laying screw-962, wire laying slide rail-963, wire laying nut-964, wire laying slider-965, wire laying wheel-966, take-up assembly-10. Detailed Implementation
[0018] To make the objectives and advantages of this utility model clearer, the utility model will be further described below with reference to the embodiments; it should be understood that the specific embodiments described herein are merely for explaining this utility model and are not intended to limit this utility model.
[0019] Preferred embodiments of the present invention will now be described with reference to the accompanying drawings. Those skilled in the art should understand that these embodiments are merely illustrative of the technical principles of the present invention and are not intended to limit the scope of protection of the present invention.
[0020] It should be noted that in the description of this utility model, the terms "upper", "lower", "left", "right", "inner", "outer", etc., indicating the direction or positional relationship are based on the direction or positional relationship shown in the drawings. This is only for the convenience of description and does not indicate or imply that the device or element must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, it should not be construed as a limitation of this utility model.
[0021] Furthermore, it should be noted that, in the description of this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "joining" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.
[0022] The present invention will be further described in detail below with reference to the accompanying drawings.
[0023] like Figures 1-2 As shown, this utility model provides a multi-dimensional cutting component, including a roller frame 1, a first lifting mechanism 2, a second lifting mechanism 3, a first moving roller assembly 4, a second moving roller assembly 5, a first fixed roller assembly 6, a second fixed roller assembly 7, a cutting wire 8, a wire feeding assembly 9, and a wire take-up assembly 10. The roller frame 1 has a square frame structure. The first lifting mechanism 2 and the second lifting mechanism 3 have the same structure and are mirror images of each other on the left and right sides of the bottom of the roller frame 1. The first lifting mechanism 2 is located at the bottom left side of the roller frame 1 and is connected to the first moving roller assembly 4. The first lifting mechanism 2 can drive the first moving roller assembly 4 to move up and down on the left side of the roller frame 1. The second lifting mechanism 3 is located at the bottom right side of the roller frame 1 and is connected to the second moving roller assembly 5. The second lifting mechanism 3 can drive the second moving roller assembly 5 to move up and down on the right side of the roller frame 1. The first fixed roller assembly 6 is located at the upper left side of the roller frame 1, and the second fixed roller assembly 7 is located at the upper right side of the roller frame 1.
[0024] The first lifting mechanism 2 includes a lifting motor 21, a lifting screw 22, a lifting frame 23, a lifting slide rail 24, and a lifting slider 25. The lifting motor 21 is located on the side of the roller frame 1. The lifting screw 22 is poweredly connected to the lifting motor 21. The lifting frame 23 is mounted on the lifting screw 22 via a nut corresponding to the lifting screw 22 and can slide up and down the lifting screw 22 by rotating the lifting screw 22. The lifting slider 25 is located inside the lifting frame 23, and the lifting slide rail 24 is located on the side of the roller frame 1.
[0025] The first moving roller assembly 4, the second moving roller assembly 5, the first fixed roller assembly 6, and the second fixed roller assembly 7 each include a roller bracket 41, a roller 42, and a roller motor 43. The roller 42 is rotatably mounted on the roller bracket 41, and the roller motor 43 is poweredly connected to the roller 42. The wire feeding assembly 9 and the wire take-up assembly 10 are located on the left and right sides of the roller frame 1, respectively. The cutting wire 8 is wound around the first moving roller assembly 4, the second moving roller assembly 5, the first fixed roller assembly 6, and the second fixed roller assembly 7, with one end connected to the wire feeding assembly 9 and the other end connected to the wire take-up assembly 10.
[0026] The wire feeding assembly 9 includes a wire feeding adjustment assembly 91, a wire feeding reel 92, a wire feeding motor 93, a wire feeding tension wheel 94, a wire feeding tension motor 95, and a wire laying assembly 96. The wire feeding adjustment assembly 91 is located on the upper side of the roller frame 1. The wire feeding motor 93 is poweredly connected to the wire feeding reel 92, and the wire feeding tension motor 95 is poweredly connected to the wire feeding tension wheel 94. The wire laying assembly 96 is located on the side of the roller frame 1, above the wire feeding reel 92. The wire feeding adjustment assembly 91 includes a wire feeding reel 911, an adjustment motor 912, a wire feeding screw 913, and a wire feeding slider 914. The adjustment motor 912 is poweredly connected to the wire feeding screw 913, and the wire feeding slider 914 is mounted on the wire feeding screw 913 via a nut corresponding to the wire feeding screw 913. The wire feeding reel... The wire inlet slider 914 is set on the wire inlet screw 913. When the wire inlet screw 913 rotates, the wire inlet slider 914 can move left and right on the wire inlet screw 913. The wire laying assembly 96 includes a wire laying motor 961, a wire laying screw 962, a wire laying slide rail 963, a wire laying nut 964, a wire laying slider 965, and a wire laying wheel 966. The wire laying motor 961 is poweredly connected to the wire laying screw 962. The wire laying nut 964 is sleeved on the wire laying screw 962 and connected to the wire laying slide rail 963. The wire laying slider 965 is set on the roller frame 1 and slides on the wire laying slide rail 963. The wire laying wheel 966 is set on the wire laying slide rail 963. The take-up assembly 10 has the same structure as the pay-off assembly 9 and is mirror-image set on the other side of the roller frame 1.
[0027] This machine employs a first moving roller assembly that moves downwards and a second moving roller assembly that moves upwards, causing the cutting line wound around the rollers to tilt to the left. Conversely, when the first moving roller assembly moves upwards, the second moving roller assembly moves downwards, causing the cutting line to tilt to the right. This assembly, installed on the cutting equipment, enables oscillating cutting of the material at an angle, eliminating the need for a material platform to oscillate or for the entire cutting frame to tilt, thus accelerating the cutting process.
[0028] This utility model is not limited to the specific embodiments described above. Any modifications made by those skilled in the art based on the above concept without creative effort shall fall within the protection scope of this utility model.
Claims
1. A multi-dimensional cutting component, characterized in that, The multi-dimensional cutting assembly includes a roller frame (1), a first lifting mechanism (2), a second lifting mechanism (3), a first moving roller assembly (4), a second moving roller assembly (5), a first fixed roller assembly (6), and a second fixed roller assembly (7). The roller frame (1) is a square frame structure. The first lifting mechanism (2) is located at the bottom left side of the roller frame (1) and connected to the first moving roller assembly (4). The first lifting mechanism (2) can drive the first moving roller assembly (4) to move up and down on the left side of the roller frame (1). The second lifting mechanism (3) is located at the bottom right side of the roller frame (1) and connected to the second moving roller assembly (5). The second lifting mechanism (3) can drive the second moving roller assembly (5) to move up and down on the right side of the roller frame (1). The first fixed roller assembly (6) is located at the top left side of the roller frame (1), and the second fixed roller assembly (7) is located at the top right side of the roller frame (1).
2. The multi-dimensional cutting component according to claim 1, characterized in that, The first lifting mechanism (2) includes a lifting motor (21), a lifting screw (22), and a lifting frame (23). The lifting motor (21) is located on the side of the roller frame (1). The lifting screw (22) is poweredly connected to the lifting motor (21). The lifting frame (23) is mounted on the lifting screw (22) via a nut corresponding to the lifting screw (22), and can slide up and down on the lifting screw (22) by rotating the lifting screw (22).
3. The multi-dimensional cutting component according to claim 2, characterized in that, The first lifting mechanism (2) also includes a lifting slide rail (24) and a lifting slider (25). The lifting slider (25) is located inside the lifting frame (23), and the lifting slide rail (24) is located on the side of the roller frame (1).
4. The multi-dimensional cutting component according to claim 3, characterized in that, The first lifting mechanism (2) and the second lifting mechanism (3) have the same structure and are mirror images of each other on the left and right sides of the bottom of the roller frame (1).
5. The multi-dimensional cutting component according to claim 1, characterized in that, The first moving roller assembly (4), the second moving roller assembly (5), the first fixed roller assembly (6), and the second fixed roller assembly (7) all include a roller bracket (41), a roller (42), and a roller motor (43). The roller (42) is rotatably mounted on the roller bracket (41), and the roller motor (43) is poweredly connected to the roller (42).
6. The multi-dimensional cutting component according to claim 1, characterized in that, The multi-dimensional cutting assembly also includes a cutting line (8), a wire feeding assembly (9), and a wire take-up assembly (10). The wire feeding assembly (9) and the wire take-up assembly (10) are arranged on the left and right sides of the roller frame (1). The cutting line (8) is wound around the first moving roller assembly (4), the second moving roller assembly (5), the first fixed roller assembly (6), and the second fixed roller assembly (7), with one end connected to the wire feeding assembly (9) and the other end connected to the wire take-up assembly (10).
7. The multi-dimensional cutting component according to claim 6, characterized in that, The wire feeding assembly (9) includes a wire inlet adjustment assembly (91), a wire feeding reel (92), a wire feeding motor (93), a wire feeding tension wheel (94), a wire feeding tension motor (95), and a wire laying assembly (96). The wire inlet adjustment assembly (91) is located on the upper side of the roller frame (1). The wire feeding motor (93) is powered to the wire feeding reel (92). The wire feeding tension motor (95) is powered to the wire feeding tension wheel (94). The wire laying assembly (96) is located on the side of the roller frame (1) and above the wire feeding reel (92).
8. The multi-dimensional cutting component according to claim 7, characterized in that, The wire inlet adjustment assembly (91) includes a wire inlet wheel (911), an adjustment motor (912), a wire inlet screw (913), and a wire inlet slider (914). The adjustment motor (912) is poweredly connected to the wire inlet screw (913). The wire inlet slider (914) is mounted on the wire inlet screw (913) via a nut corresponding to the wire inlet screw (913). The wire inlet wheel (911) is mounted on the wire inlet slider (914). When the wire inlet screw (913) rotates, the wire inlet slider (914) can move left and right on the wire inlet screw (913).
9. The multi-dimensional cutting component according to claim 7, characterized in that, The cable assembly (96) includes a cable motor (961), a cable lead screw (962), a cable slide rail (963), a cable nut (964), a cable slider (965), and a cable wheel (966). The cable motor (961) is poweredly connected to the cable lead screw (962). The cable nut (964) is sleeved on the cable lead screw (962) and connected to the cable slide rail (963). The cable slider (965) is mounted on the roller frame (1) and is slidably mounted on the cable slide rail (963). The cable wheel (966) is mounted on the cable slide rail (963).
10. The multi-dimensional cutting component according to claim 9, characterized in that, The take-up assembly (10) has the same structure as the pay-off assembly (9) and is mirror-image positioned on the other side of the roller frame (1).