Cutting device for metal material production

The transmission shaft system driven by a motor rotates the rubber belt, automatically adjusting the position of the metal material. This solves the problem of frequent manual adjustments in existing cutting devices, improving production efficiency and processing speed.

CN224238362UActive Publication Date: 2026-05-15FANGCHENGGANG RONGDING METAL PROD CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
FANGCHENGGANG RONGDING METAL PROD CO LTD
Filing Date
2025-06-18
Publication Date
2026-05-15

AI Technical Summary

Technical Problem

Existing metal material cutting equipment lacks the function of automatically adjusting the material position, resulting in frequent manual intervention, production interruptions, and extended processing cycles.

Method used

By setting up a motor-driven transmission shaft system, the rubber belt is rotated, and the material position is automatically adjusted by friction, thus realizing the automatic transportation of materials.

Benefits of technology

It enables automatic adjustment of material position, reduces manual intervention, improves production efficiency, avoids production process interruption, and shortens processing cycle.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the field of metal material production, in particular to a cutting device for metal material production, which comprises a main bin. The device further comprises a first mounting groove, a first motor, a first transmission shaft, a first rubber belt, a second mounting groove, a second transmission shaft and a second rubber belt, a clamping assembly is arranged on the front side of the upper surface of the main bin, the first mounting groove is formed in the left surface of the fixing end of the clamping assembly in a penetrating mode, and the first motor is arranged on the upper surface of the fixing end of the clamping assembly. The first motor is arranged and drives the first transmission shaft on the front side to rotate, the first transmission shaft on the front side is matched with the first transmission shaft on the rear side to drive the first rubber belt to rotate when rotating, and when materials exist, the left face and the right face of the materials are tightly attached to the outer surface of the first rubber belt and the outer surface of the second rubber belt through the clamping assemblies. At the moment, a first motor is started, a first rubber pad rotates to convey the materials backwards, then a second rubber belt assists the first rubber belt to convey the materials through friction force, and therefore the purpose of automatically adjusting the positions of the materials is achieved.
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Description

Technical Field

[0001] This utility model relates to the field of metal material production, and in particular to a cutting device for metal material production. Background Technology

[0002] Metal material cutting equipment is an industrial device used to cut metal materials into specific shapes and sizes as required. It mainly achieves efficient and precise cutting through mechanical, thermal, or high-pressure energy methods.

[0003] Existing metal material cutting equipment lacks the function of automatically adjusting the material position. Without this function, frequent manual intervention is required, necessitating constant adjustments to the material position, which can lead to production interruptions and extended processing cycles.

[0004] Therefore, given that existing metal material cutting devices lack the function of automatically adjusting the material position, frequent manual intervention is required, leading to production interruptions and extended processing cycles. A solution can be designed for this purpose: a metal material cutting device is installed with a motor that drives a front drive shaft to rotate. This front drive shaft, in conjunction with a rear drive shaft, drives a rubber belt to rotate. When material is present, a clamping assembly tightly presses the material's left and right sides against the outer surfaces of rubber belts one and two. Then, the motor is activated, causing rubber pad one to rotate and transport the material backward. Friction then assists rubber belt one in transporting the material, thus achieving automatic material position adjustment. Utility Model Content

[0005] To overcome the problem that existing metal material cutting devices lack the function of automatically adjusting the material position, frequent manual intervention may be required, which may lead to production interruptions and extended processing cycles.

[0006] The technical solution of this utility model is as follows: a cutting device for metal material production, including a main chamber; it also includes a mounting groove 1, a motor 1, a transmission shaft 1, a rubber belt 1, a mounting groove 2, a transmission shaft 2, and a rubber belt 2. A clamping assembly is provided on the front side of the upper surface of the main chamber. The left surface of the fixed end of the clamping assembly is provided with a mounting groove 1. The upper surface of the fixed end of the clamping assembly is provided with a motor 1. Two symmetrical transmission shafts 1 are rotatably connected inside the mounting groove 1. The output end of the motor 1 passes through the upper surface of the fixed end of the clamping assembly and is connected to the upper surface of the front transmission shaft 1. The outer surfaces of the two transmission shafts 1 are wrapped with rubber belts 1. The right surface of the movable end of the clamping assembly is provided with a mounting groove 2. The inner surface of the mounting groove 2 is rotatably connected with two symmetrical transmission shafts 2. The outer surfaces of the two transmission shafts 2 are wrapped with rubber belts 2.

[0007] Preferably, by setting up a motor, the motor drives the front drive shaft to rotate. When the front drive shaft rotates, it cooperates with the rear drive shaft to drive the rubber belt to rotate. When there is material, the clamping assembly tightly presses the left and right sides of the material against the outer surfaces of the rubber belts. At this time, the motor is started, causing the rubber pad to rotate and transport the material backward. Then, the friction force causes the rubber belt to assist the rubber belt in transporting the material, thereby achieving the purpose of automatically adjusting the material position. This solves the problem that existing metal material production cutting devices lack the function of automatically adjusting the material position. Without the function of automatically adjusting the material position, frequent manual intervention may occur, requiring constant adjustments to the material position, which may lead to production interruptions and extended processing cycles.

[0008] Preferably, the clamping assembly includes a mounting bracket, a knob, a lead screw, a movable baffle, and a fixed baffle. The lower surface of the mounting bracket is connected to the left side of the upper surface of the main compartment. A knob is provided on the left surface of the mounting bracket. The right surface of the knob passes through the left surface of the mounting bracket and is connected to the lead screw. The right surface of the lead screw is rotatably connected to the movable baffle. A second mounting groove is opened on the right surface of the movable baffle. The fixed baffle is connected to the left side of the upper surface of the main compartment. A first mounting groove is opened on the left surface of the fixed baffle.

[0009] Preferably, a mounting groove three is provided on the rear side of the upper surface of the main compartment. A motor two is installed on the rear side of the left surface of the main compartment. The output end of the motor two passes through the left surface of the main compartment and is connected to a lead screw two. The right surface of the lead screw two is rotatably connected to the inner right surface of the mounting groove three. A slider is threaded through the outer surface of the lead screw two. A mounting plate is provided on the upper surface of the slider. The motor three is installed on the upper surface of the mounting plate. A cutting blade is connected to the output end of the motor three.

[0010] Preferably, a lower drain groove is provided on the upper surface of the main chamber below the cutting blade, and a flow guide channel is installed on the upper surface of the main chamber below the lower drain groove. A vacuum pump is installed on the lower surface of the flow guide channel, and a pipe is installed on the lower surface of the vacuum pump.

[0011] Preferably, a rocker arm is provided on the left surface of the knob, and a handle is rotatably connected to the lower side of the left surface of the rocker arm.

[0012] Preferably, a sliding groove is provided on the lower side of the front surface of the main compartment, and a drawer is slidably connected inside the sliding groove.

[0013] Preferably, casters are installed at all four corners of the lower surface of the main compartment.

[0014] The beneficial effects of this utility model are:

[0015] 1. By starting the motor, the front drive shaft rotates. The front drive shaft, through a linkage mechanism with the rear drive shaft, drives the rubber belt to rotate synchronously. When the material enters the processing area, the clamping assembly presses the left and right sides of the material onto the outer surfaces of rubber belts one and two, respectively. At this time, the motor is activated, causing rubber belt one to transport the material backward through rotation. Simultaneously, based on the contact friction between the material and rubber belt two, rubber belt two works in conjunction with rubber belt one to form a bidirectional carrying force, thereby achieving automatic material position adjustment. This solves the problem that existing metal material cutting devices lack automatic material position adjustment functionality. Without this function, frequent manual intervention is required, necessitating constant adjustments to the material position, leading to production interruptions and extended processing cycles. Attached Figure Description

[0016] Figure 1 The diagram shown is a three-dimensional structural schematic of the cutting device for metal material production according to this utility model.

[0017] Figure 2 The diagram shown is a schematic representation of the structure of the fixing baffle of the cutting device for metal material production according to this utility model.

[0018] Figure 3 The diagram shown is a schematic diagram of the flow channel structure of the cutting device for metal material production according to this utility model.

[0019] Figure 4 The diagram shown is a schematic representation of the knob structure of the cutting device for metal material production according to this utility model.

[0020] Explanation of reference numerals in the attached diagram: 1. Main compartment; 202. Mounting bracket; 203. Knob; 204. Lead screw one; 205. Movable baffle; 206. Fixed baffle; 3. Mounting slot one; 4. Motor one; 5. Drive shaft one; 6. Rubber belt one; 7. Mounting slot two; 8. Drive shaft two; 9. Rubber belt two; 10. Mounting slot three; 11. Motor two; 12. Lead screw two; 13. Slider; 14. Mounting plate; 15. Motor three; 16. Cutting disc; 17. Lower drain groove; 18. Guide channel; 19. Vacuum pump; 20. Pipe; 21. Rocker arm; 22. Handle; 23. Sliding groove; 24. Drawer; 25. Casters. Detailed Implementation

[0021] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0022] Please see Figures 1-4This utility model provides an embodiment of a cutting device for metal material production, including a main chamber 1; it also includes a mounting groove 3, a motor 4, a transmission shaft 5, a rubber belt 6, a second mounting groove 7, a second transmission shaft 8, and a second rubber belt 9. A clamping assembly is provided on the front side of the upper surface of the main chamber 1. The left surface of the fixed end of the clamping assembly has a through mounting groove 3. The upper surface of the fixed end of the clamping assembly is provided with a motor 4. Two symmetrical transmission shafts 5 are rotatably connected inside the mounting groove 3. The output end of the motor 4 passes through the upper surface of the fixed end of the clamping assembly and connects to the upper surface of the front transmission shaft 5. The outer surfaces of the two transmission shafts 5 are wrapped with rubber belts 6. The right surface of the movable end of the clamping assembly... The surface is provided with a mounting groove 2 7. Inside the mounting groove 2 7, two symmetrical drive shafts 2 8 are rotatably connected. The outer surfaces of the two drive shafts 2 8 are covered with rubber belts 2 9. A motor 1 4 is provided, which drives the front drive shaft 1 5 to rotate. When the front drive shaft 1 5 rotates, it cooperates with the rear drive shaft 1 5, thereby driving the rubber belt 1 6 to rotate. When there is material, the clamping assembly tightly presses the left and right sides of the material against the outer surfaces of the rubber belts 1 6 and 2 9. At this time, the motor 1 4 is started, causing the rubber pad 1 to rotate and transport the material backward. Then, the friction force causes the rubber belt 2 9 to assist the rubber belt 1 6 in transporting the material, thereby achieving the purpose of automatically adjusting the position of the material.

[0023] Please see Figures 1-3In this embodiment, the clamping assembly includes a mounting bracket 202, a knob 203, a lead screw 204, a movable baffle 205, and a fixed baffle 206. The lower surface of the mounting bracket 202 is connected to the left side of the upper surface of the main compartment 1. A knob 203 is provided on the left surface of the mounting bracket 202. The right surface of the knob 203 passes through the left surface of the mounting bracket 202 and is connected to the lead screw 204. The right surface of the lead screw 204 is rotatably connected to the movable baffle 205. A second mounting groove 7 is opened on the right surface of the movable baffle 205. The fixed baffle 206 is connected to the left side of the upper surface of the main compartment 1. A second mounting groove 3 is opened on the right surface of the movable baffle 205. On the left surface of the fixed baffle 206, a knob 203 is provided. When the knob 203 is turned, the lead screw 204 rotates. Since the lead screw 204 and the movable baffle 205 are rotatably connected, the lead screw 204 moves when it rotates. When the lead screw 204 moves, it drives the movable baffle 205 to move. By adjusting the distance between the movable baffle 205 and the fixed baffle 206, the material is clamped. A mounting groove 3 10 is provided on the rear side of the upper surface of the main compartment 1. A motor 2 11 is installed on the rear side of the left surface of the main compartment 1. The output end of the motor 2 11 passes through the left surface of the main compartment 1 and is connected to the lead screw. The right surface of lead screw 12 is rotatably connected to the inner right surface of mounting groove 10. A slider 13 is threadedly connected to the outer surface of lead screw 12. A mounting plate 14 is mounted on the upper surface of slider 13, and a motor 15 is mounted on the upper surface of mounting plate 14. A cutting blade 16 is connected to the output end of motor 15. Motor 11 drives lead screw 12 to rotate. When lead screw 12 rotates, the rotation of slider 13 is restricted by mounting groove 10, thereby causing slider 13 and its connected parts to move together. Motor 15, when running, drives... The cutting blade 16 rotates, and the two work together to achieve automatic reciprocating cutting. The upper surface of the main chamber 1 is provided with a lower drain groove 17 below the cutting blade 16. The upper surface of the main chamber 1 is provided with a guide channel 18 below the lower drain groove 17. A vacuum pump 19 is provided on the lower surface of the guide channel 18, and a pipe 20 is provided on the lower surface of the vacuum pump 19. By setting the guide channel 18, the cutting dust can enter the interior of the main chamber 1. The vacuum pump 19 provides suction to further enhance the cleaning ability and prevent some cutting dust from floating in the air without entering the guide channel 18, thereby achieving the purpose of collecting cutting dust.

[0024] Please see Figures 1-4In this embodiment, a rocker arm 21 is provided on the left surface of the knob 203, and a handle 22 is rotatably connected to the lower side of the left surface of the rocker arm 21. By providing the rocker arm 21, the torque applied to the knob 203 is enhanced, and by providing the handle 22, the operator has a grip point when turning the rocker arm 21, thereby achieving the purpose of easily and conveniently turning the knob 203. A sliding groove 23 is provided on the lower side of the front surface of the main chamber 1, and a drawer 24 is slidably connected inside the sliding groove 23. By providing the drawer 24, it can be used to hold the cutting dust sucked in by the vacuum pump 19. Since the drawer 24 can be pulled out, the cutting dust accumulated inside the main chamber 1 can be cleaned. Universal wheels 25 are provided at the four corners of the lower surface of the main chamber 1. By providing the universal wheels 25, the structure of the universal wheels 25 allows for 360-degree horizontal rotation, which allows the metal material production cutting device to move easily in any direction, thereby achieving the purpose of facilitating the movement of the operator.

[0025] During operation, the knob 203 rotates, causing the lead screw 204 to rotate. Since the lead screw 204 and the movable baffle 205 are rotatably connected, the lead screw 204 moves as it rotates, causing the movable baffle 205 to move as well. This adjusts the distance between the movable baffle 205 and the fixed baffle 206, thus clamping the material. A motor 11 drives the lead screw 12 to rotate. The rotation of the lead screw 12 is restricted by the mounting groove 10, causing the slider 13 and its connected parts to move together. A motor 15 drives the cutting disc 16 to rotate. Together, these mechanisms achieve automatic reciprocating cutting. A guide channel 18 allows the cutting dust to flow smoothly. Inside the main chamber 1, a vacuum pump 19 further enhances the cleaning capability by providing suction, preventing some cutting dust from remaining in the air without entering the guide channel 18. This achieves the purpose of collecting cutting dust. A rocker arm 21 increases the torque applied to the knob 203, and a handle 22 provides a grip point for the operator when turning the rocker arm 21, making it easy and convenient to turn the knob 203. A drawer 24 can be used to collect the cutting dust sucked in by the vacuum pump 19. Since the drawer 24 can be pulled out, the cutting dust accumulated inside the main chamber 1 can be cleaned. The universal wheels 25 allow for 360-degree horizontal rotation, enabling the metal material production cutting device to move easily in any direction, thus facilitating the movement of the operator.

[0026] Through the above steps, the starting motor 4 drives the front drive shaft 5 to rotate. When the front drive shaft 5 rotates, it drives the rubber belt 6 to rotate synchronously via a linkage mechanism with the rear drive shaft 5. When the material enters the processing area, the clamping assembly presses the left and right sides of the material onto the outer surfaces of the rubber belt 6 and the second rubber belt 9, respectively. At this time, the motor 4 is activated, causing the rubber belt 6 to transport the material backward through rotation. Simultaneously, based on the contact friction between the material and the second rubber belt 9, the second rubber belt 9 works in conjunction with the first rubber belt 6 to form a bidirectional carrying force, thereby achieving the purpose of automatically adjusting the material position. This solves the problem that existing metal material production cutting devices lack the function of automatically adjusting the material position. Without this function, frequent manual intervention is required, necessitating constant adjustments to the material position, leading to production interruptions and extended processing cycles.

Claims

1. A cutting device for metal material production, comprising a main chamber (1); characterized in that: It also includes a mounting slot 1 (3), a motor 1 (4), a transmission shaft 1 (5), a rubber belt 1 (6), a mounting slot 2 (7), a transmission shaft 2 (8), and a rubber belt 2 (9). A clamping assembly is provided on the front side of the upper surface of the main compartment (1). The left surface of the fixed end of the clamping assembly is provided with a mounting slot 1 (3). The upper surface of the fixed end of the clamping assembly is provided with a motor 1 (4). The interior of the mounting slot 1 (3) is rotatably connected to two symmetrical transmission shafts 1 (5). The output end of the motor 1 (4) is connected to the upper surface of the fixed end of the clamping assembly through the upper surface of the front transmission shaft 1 (5). The outer surfaces of the two transmission shafts 1 (5) are wrapped with rubber belt 1 (6). The right surface of the movable end of the clamping assembly is provided with a mounting slot 2 (7). The interior of the mounting slot 2 (7) is rotatably connected to two symmetrical transmission shafts 2 (8). The outer surfaces of the two transmission shafts 2 (8) are wrapped with rubber belt 2 (9).

2. The cutting device for metal material production according to claim 1, characterized in that: The clamping assembly includes a mounting bracket (202), a knob (203), a lead screw (204), a movable baffle (205), and a fixed baffle (206). The lower surface of the mounting bracket (202) is connected to the left side of the upper surface of the main compartment (1). A knob (203) is provided on the left surface of the mounting bracket (202). The right surface of the knob (203) passes through the left surface of the mounting bracket (202) and is connected to the lead screw (204). The right surface of the lead screw (204) is rotatably connected to the movable baffle (205). The second mounting slot (7) is opened on the right surface of the movable baffle (205). The fixed baffle (206) is connected to the left side of the upper surface of the main compartment (1). The first mounting slot (3) is opened on the left surface of the fixed baffle (206).

3. The cutting device for metal material production according to claim 1, characterized in that: A mounting groove 3 (10) is provided on the rear side of the upper surface of the main compartment (1). A motor 2 (11) is installed on the rear side of the left surface of the main compartment (1). The output end of the motor 2 (11) passes through the left surface of the main compartment (1) and is connected to a lead screw 2 (12). The right surface of the lead screw 2 (12) is rotatably connected to the inner right surface of the mounting groove 3 (10). A slider (13) is threaded through the outer surface of the lead screw 2 (12). A mounting plate (14) is provided on the upper surface of the slider (13). A motor 3 (15) is installed on the upper surface of the mounting plate (14). A cutting blade (16) is connected to the output end of the motor 3 (15).

4. The cutting device for metal material production according to claim 3, characterized in that: The upper surface of the main chamber (1) is provided with a lower drain groove (17) below the cutting blade (16). The upper surface of the main chamber (1) is provided with a flow channel (18) below the lower drain groove (17). A vacuum pump (19) is provided on the lower surface of the flow channel (18). A pipe (20) is provided on the lower surface of the vacuum pump (19).

5. The cutting device for metal material production according to claim 2, characterized in that: A rocker arm (21) is provided on the left surface of the knob (203), and a crank handle (22) is rotatably connected to the lower side of the left surface of the rocker arm (21).

6. The cutting device for metal material production according to claim 1, characterized in that: A sliding groove (23) is provided on the lower side of the front surface of the main compartment (1), and a drawer (24) is slidably connected inside the sliding groove (23).

7. The cutting device for metal material production according to claim 1, characterized in that: The four corners of the lower surface of the main compartment (1) are equipped with casters (25).