Alloy material processing and cutting device with positioning structure
By using a drive shaft to move the conveyor belt and combining it with anti-slip strips and limit grooves, the problem of cumbersome workpiece position adjustment in alloy material processing and cutting devices is solved, achieving an efficient and precise cutting process.
Patent Information
- Application Number
- CN202423201330.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-25
- Publication Date
- 2026-01-13
- Estimated Expiration
- 2034-12-25
AI Technical Summary
Existing alloy material processing and cutting devices require constant adjustment of the workpiece position after clamping, resulting in low work efficiency.
The machined parts are moved by a drive shaft, driven shaft and conveyor belt. Anti-slip strips are used to increase friction. Combined with the shaft design and limiting groove structure of the clamping assembly, the machined parts do not come out of the clamp during movement, adapting to different sizes and preventing the effects of vibration.
It enables efficient movement and precise positioning of processed parts, improves cutting efficiency, adapts to the needs of processed parts of different sizes, and avoids the effects of slippage and vibration.
Smart Images

Figure CN223789632U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to alloy material processing technical field especially, relates to alloy material processing cutting device with positioning structure. BACKGROUND
[0002] Alloy is by two or two above metal or nonmetal after mixing melting, cooling solidification the matter with the metal characteristic that synthesizes, common alloy has aluminum alloy, titanium alloy, magnesium alloy, copper alloy etc., the physical property of alloy can have the similar place with the element of alloy composition, but the tensile strength and shear strength of alloy are usually very different with the nature of the element, alloy belongs to mixture, for example, pig iron, steel, brass etc., at least one metal is contained in alloy, but not necessarily all is metal, the hardness of alloy is generally greater than the pure metal that constitutes it, the melting point is generally lower than the pure metal that constitutes it, and the corrosion resistance is better.
[0003] The positioning structure of the common alloy material processing cutting device, when using, the clamping structure will fix the position of the workpiece on the workbench surface after clamping the workpiece, and the position needs to be adjusted constantly after each cutting, which is cumbersome and reduces the work efficiency.
[0004] Therefore, aiming at the positioning structure of the alloy material processing cutting device, the position of the workpiece cannot be moved while clamping, and the work efficiency is not high, which needs to be solved to improve the use scene of the positioning structure of the alloy material processing cutting device. UTILITY MODEL CONTENTS
[0005] In order to overcome the problem that the positioning structure of the common alloy material processing cutting device fixes the position of the workpiece on the workbench surface after clamping the workpiece when using, and the position needs to be adjusted constantly after each cutting, the position of the workpiece cannot be moved while clamping, and the operation is cumbersome and reduces the work efficiency.
[0006] The technical scheme of the utility model is: an alloy material processing cutting device with a positioning structure, comprising a workbench, the bottom surface corners of the workbench are respectively provided with symmetrically arranged supporting legs, a cutting module is arranged on the upper surface of the workbench, a slag collecting box is arranged below the cutting module, a material moving assembly is arranged on the left side of the upper surface of the workbench, the material moving assembly comprises a driving shaft, a driven shaft and a conveyor belt; the driving shaft is arranged in the groove on the left side of the upper surface of the workbench, a plurality of driven shafts are arranged on the right side of the driving shaft, the outer surfaces of the driving shaft and the driven shafts are provided with a conveyor belt, a device box is arranged on the rear side of the lower surface of the workbench, a moving seat is arranged in the device box, a supporting arm is arranged on the left side surface of the moving seat, a clamping assembly is arranged at the top end of the supporting arm, and two groups of clamping assemblies are symmetrically arranged on the upper surface of the workbench.
[0007] Preferably, by setting a drive shaft, when the drive shaft rotates, it will synchronously drive the driven shaft and the transmission belt to rotate, thereby moving the alloy material workpiece toward the cutting module. This solves the problem that the existing alloy material processing and cutting device is inconvenient to move the position of the workpiece during use, and requires position adjustment and re-clamping after each cut, resulting in low efficiency.
[0008] Preferably, the material transfer assembly includes anti-slip strips; the drive shaft is driven to rotate by an external motor, and the outer surface of the conveyor belt is adhered with an array of anti-slip strips. By setting the anti-slip strips, the friction between the conveyor belt surface and the workpiece can be increased, so that the workpiece can be moved more effectively when the conveyor belt rotates, and slippage can be avoided.
[0009] Preferably, the equipment housing contains a lead screw, and the movable seat is threadedly connected to the lead screw. A handle is installed at the rear end of the equipment housing, and the rear end of the lead screw is connected to the handle. One end of a reinforcing plate is connected to the bottom surface of the support arm, and the other end of the reinforcing plate is connected to the movable seat. By setting the handle, turning the handle will drive the lead screw to rotate, thereby driving the movable seat on its surface to move back and forth, thereby causing the clamping assembly above to fit against the surface of the workpiece. This is suitable for workpieces of different sizes. Furthermore, by setting the reinforcing plate, it forms a triangular structure with the bottom of the support arm and the left side surface of the movable seat, which has high stability and support effect.
[0010] Preferably, the clamping assembly includes a clamping plate and a rotating shaft; the upper end of the front surface of the support arm is connected to the clamping plate of the rear clamping assembly, and the clamping plate is provided with several rotating shafts inside. The outer surface of the rotating shafts slightly protrudes from the front surface of the clamping plate. By setting the rotating shafts, after the clamping plate clamps the workpiece, the outer surface of the rotating shaft will fit against the workpiece. When the workpiece moves under the drive of the conveyor belt, the rotating shaft will rotate synchronously, thereby ensuring the clamping effect without hindering the movement of the workpiece.
[0011] Preferably, the clamping assembly includes a limiting groove; the upper end of the rotating shaft passes through the upper surface of the clamping plate, and a limiting groove is formed on the upper surface of the rotating shaft. The limiting groove is hexagonal. By setting the limiting groove, the limiting structure can be inserted into the limiting groove during cutting to restrict the rotation of the rotating shaft, thereby preventing the rotating shaft from rotating due to the vibration of the equipment during processing, which would affect the cutting accuracy.
[0012] As preferred, the clamping assembly comprises connecting rods, electric push rods, connecting plates, pressing plates and limiting blocks; the left and right sides of the clamping plate are provided with connecting rods, the ends of the connecting rods away from the clamping plate are connected with electric push rods, the telescopic ends of the electric push rods are provided with connecting plates, the top surfaces of the connecting plates are provided with pressing plates, the bottom surfaces of the pressing plates are provided with limiting blocks, the limiting blocks are matched with limiting grooves, through the setting of the electric push rods, when cutting, the electric push rods are retracted, the pressing plates are lowered, so that the limiting blocks are inserted into the inside of the limiting grooves, to achieve the purpose of preventing the rotation of the rotating shaft.
[0013] As preferred, the upper surface of the workbench is provided with a telescopic cylinder, the telescopic end of the telescopic cylinder is connected with the front side surface of the clamping plate of the front side clamping assembly, through the setting of the telescopic cylinder, the telescopic cylinder can adjust the position of the front side clamping plate, so that the device can clamp machining pieces of different widths.
[0014] The beneficial effects of the utility model are:
[0015] 1. Through the setting of the driving shaft, when the driving shaft rotates, the driven shaft and the transmission belt are synchronously driven to rotate, so as to drive the alloy material machining piece to move towards the cutting module, thereby solving the problem that the existing alloy material machining and cutting device is not convenient for moving the position of the machining piece during use, and needs to be adjusted and clamped again after each cutting, and the efficiency is low.
[0016] 2. Through the setting of the anti-skid strip, the friction between the surface of the conveying belt and the machining piece can be improved, so that the machining piece can be better driven to move when the conveying belt rotates, and the situation of slipping is avoided, and through the setting of the rotating shaft, after the clamping plate clamps the machining piece, the outer surface of the rotating shaft is attached to the machining piece, and when the machining piece is driven to move by the conveying belt, the rotating shaft is synchronously rotated, so that the clamping effect is ensured while the movement of the machining piece is not hindered. BRIEF DESCRIPTION OF DRAWINGS
[0017] Figure 1 A three-dimensional structure schematic view of the alloy material machining and cutting device with a positioning structure is shown;
[0018] Figure 2 A material moving assembly installation structure schematic view of the alloy material machining and cutting device with a positioning structure is shown;
[0019] Figure 3 A bottom view three-dimensional structure schematic view of the alloy material machining and cutting device with a positioning structure is shown;
[0020] Figure 4 A clamping assembly installation structure schematic view of the alloy material machining and cutting device with a positioning structure is shown.
[0021] In the figure: 1, workbench; 2, supporting leg; 3, cutting module; 4, slag collecting box; 51, driving shaft; 52, driven shaft; 53, conveying belt; 54, anti-skid strip; 6, equipment box; 7, screw rod; 8, moving seat; 9, handle; 10, supporting arm; 11, reinforcing plate; 121, clamping plate; 122, rotating shaft; 123, limiting groove; 124, connecting rod; 125, electric push rod; 126, connecting plate; 127, pressing plate; 128, limiting block; 13, telescopic cylinder. DETAILED DESCRIPTION
[0022] The utility model is further explained in connection with the drawings and examples.
[0023] Please refer to Figures 1-3 The utility model provides a kind of alloy material processing cutting device with positioning structure, including workbench 1, the bottom surface corner of workbench 1 is respectively installed with mutually symmetrical supporting leg 2, the upper surface of workbench 1 is close to right position and is provided with cutting module 3, cutting module 3 is provided with slag collecting box 4 below, the upper surface of workbench 1 is close to left position and is provided with material moving assembly, material moving assembly includes driving shaft 51, driven shaft 52 and conveying belt 53;Driving shaft 51 is provided in the recess of the upper surface of workbench 1 left position, the right side of driving shaft 51 is provided with a plurality of driven shaft 52, the outer surface of driving shaft 51 and driven shaft 52 is provided with conveying belt 53, the lower surface rear side of workbench 1 is provided with equipment box 6, the inside of equipment box 6 is provided with moving seat 8, the left side surface of moving seat 8 is installed with supporting arm 10, supporting arm 10 top is provided with clamping assembly, clamping assembly is provided with two groups on the upper surface of workbench 1.
[0024] Please refer to Figures 1-4In the embodiment, the material moving assembly comprises the anti-skid strips 54; the driving shaft 51 is driven to rotate by an external motor; the outer surface of the conveying belt 53 is adhered with the arrayed anti-skid strips 54; the friction between the surface of the conveying belt 53 and the workpiece can be improved by arranging the anti-skid strips 54, so that the workpiece can be better moved when the conveying belt 53 rotates, and the slipping condition can be avoided; the inside of the equipment box 6 is provided with the lead screw 7; the moving seat 8 is threadedly connected with the lead screw 7; the rear end of the equipment box 6 is provided with the handle 9; the rear end of the lead screw 7 is connected with the handle 9; one end of the reinforcing plate 11 is connected with the bottom surface of the supporting arm 10; the other end of the reinforcing plate 11 is connected with the moving seat 8; the handle 9 is arranged, and when the handle 9 is rotated, the lead screw 7 is driven to rotate, so that the moving seat 8 on the surface thereof is driven to move forward and backward, so that the upper clamping assembly is brought into surface adhesion with the workpiece, which is suitable for workpieces of different sizes; the reinforcing plate 11 is arranged, and the reinforcing plate 11, the bottom of the supporting arm 10 and the left surface of the moving seat 8 form a triangular structure, which has high stability and supporting effect; the clamping assembly comprises the clamping plate 121 and the rotating shaft 122; the clamping plate 121 of the rear clamping assembly is connected with the front surface of the supporting arm 10; the inside of the clamping plate 121 is provided with a plurality of rotating shafts 122; the outer surface of the rotating shaft 122 slightly protrudes the front surface of the clamping plate 121; the outer surface of the rotating shaft 122 is brought into surface adhesion with the workpiece after the workpiece is clamped by the clamping plate 121; the rotating shaft 122 is synchronously rotated when the workpiece is moved by the conveying belt 53, so that the clamping effect is ensured and the movement of the workpiece is not hindered.
[0025] Please refer to Figures 1-4In the embodiment, the clamping assembly comprises a limiting groove 123; the upper end of the rotating shaft 122 passes through the upper surface of the clamping plate 121, and the upper end surface of the rotating shaft 122 is provided with the limiting groove 123, which is hexagonal. By arranging the limiting groove 123, the limiting structure can be clamped into the inside of the limiting groove 123 during cutting, so as to limit the rotation of the rotating shaft 122, thereby avoiding the rotation of the rotating shaft 122 due to the vibration of the equipment during processing, and affecting the cutting precision. In addition, the clamping assembly comprises a connecting rod 124, an electric push rod 125, a connecting plate 126, a pressing plate 127 and a limiting block 128; the left and right sides of the clamping plate 121 are provided with the connecting rods 124, the ends of the connecting rods 124 away from the clamping plate 121 are connected with the electric push rods 125, the telescopic ends of the electric push rods 125 are provided with the connecting plates 126, the top surface of the connecting plate 126 is provided with the pressing plate 127, the bottom surface of the pressing plate 127 is provided with a plurality of limiting blocks 128, the limiting blocks 128 are matched with the limiting groove 123, and the electric push rod 125 is arranged. During cutting, the electric push rod 125 is retracted, the pressing plate 127 is lowered, the limiting block 128 is inserted into the inside of the limiting groove 123, and the rotating shaft 122 is prevented from rotating. The upper surface of the workbench 1 is provided with a telescopic cylinder 13 at the front side, the telescopic end of the telescopic cylinder 13 is connected with the front side surface of the clamping plate 121 of the front side clamping assembly, and the telescopic cylinder 13 is arranged. The telescopic cylinder 13 can adjust the position of the front clamping plate 121 by the telescopic movement of the telescopic cylinder 13, so that the device can clamp workpieces with different widths.
[0026] When working, the anti-skid strip 54 is arranged to increase the friction between the surface of the conveying belt 53 and the workpiece, so that the workpiece can be better moved when the conveying belt 53 rotates, and the slipping phenomenon is avoided. The handle 9 is arranged, and when the handle 9 is rotated, the screw rod 7 is driven to rotate, so that the moving seat 8 on the surface of the screw rod 7 moves forward and backward, so that the upper clamping assembly is attached to the surface of the workpiece, which is suitable for workpieces of different sizes. The reinforcing plate 11 is arranged, which forms a triangular structure with the bottom of the supporting arm 10 and the left surface of the moving seat 8, has high stability and supporting effect, and the shaft 122 is arranged. After the clamping plate 121 clamps the workpiece, the outer surface of the shaft 122 is attached to the workpiece. When the workpiece is moved by the conveying belt 53, the shaft 122 rotates synchronously, so that the clamping effect is ensured and the movement of the workpiece is not hindered. The limiting groove 123 is arranged, and during cutting, the limiting structure can be clamped into the inside of the limiting groove 123, so as to limit the rotation of the shaft 122, so as to avoid the rotation of the shaft 122 due to vibration of the equipment during processing, and affect the cutting precision. The electric push rod 125 is arranged, and during cutting, the electric push rod 125 is retracted, driving the pressing plate 127 to descend, so that the limiting block 128 is inserted into the inside of the limiting groove 123, so as to achieve the purpose of preventing the rotation of the shaft 122. The telescopic cylinder 13 is arranged, and the telescopic cylinder 13 can adjust the position of the front clamping plate 121, so that the device can clamp workpieces of different widths.
[0027] Through the above steps, the driving shaft 51 is arranged, and when the driving shaft 51 rotates, the driven shaft 52 and the transmission belt are synchronously driven to rotate, so that the alloy material workpiece is moved to the cutting die assembly 3. The existing alloy material processing and cutting device is inconvenient to move the position of the workpiece during use, and needs to be adjusted and clamped again after each cutting, which has low efficiency.
[0028] The embodiments of the utility model are described in detail above combined with the drawings, but the utility model is not limited to the above-mentioned embodiments, and various changes can be made within the knowledge range of those skilled in the art without departing from the purpose of the utility model.
Claims
1. An alloy material processing cutting device with positioning structure, comprising a workbench (1), characterized in that: The bottom surface corner of the workbench (1) is respectively provided with mutually symmetrical supporting legs (2), the right position of the upper surface of the workbench (1) is provided with a cutting module (3), the lower side of the cutting module (3) is provided with a slag collecting box (4), the left position of the upper surface of the workbench (1) is provided with a material moving assembly, the material moving assembly comprises a driving shaft (51), a driven shaft (52) and a conveyor belt (53); the left position of the upper surface of the workbench (1) is provided with the driving shaft (51) in the groove, the right side of the driving shaft (51) is provided with a plurality of driven shafts (52), the outer surfaces of the driving shaft (51) and the driven shaft (52) are provided with the conveyor belt (53), the rear side of the lower surface of the workbench (1) is provided with an equipment box (6), the inside of the equipment box (6) is provided with a moving seat (8), the left side surface of the moving seat (8) is provided with a supporting arm (10), the top end of the supporting arm (10) is provided with a clamping assembly, and the clamping assembly is symmetrically provided with two groups on the upper surface of the workbench (1).
2. The alloy material processing cutting device with positioning structure according to claim 1, characterized in that: The material moving assembly comprises anti-skid strips (54); the driving shaft (51) is driven to rotate by an external motor, and the outer surface of the conveyor belt (53) is attached with the array distributed anti-skid strips (54).
3. The alloy material processing cutting device with positioning structure according to claim 1, characterized in that: The inside of the equipment box (6) is provided with a lead screw (7), the moving seat (8) is threadedly connected with the lead screw (7), the rear end of the equipment box (6) is provided with a handle (9), the rear end of the lead screw (7) is connected with the handle (9), one end of the bottom surface of the supporting arm (10) is connected with a reinforcing plate (11), and the other end of the reinforcing plate (11) is connected with the moving seat (8).
4. The alloy material processing cutting device with positioning structure according to claim 1, characterized in that: The clamping assembly comprises a clamping plate (121) and a rotating shaft (122); the front side surface of the supporting arm (10) is connected with the clamping plate (121) of the rear clamping assembly, the inside of the clamping plate (121) is provided with a plurality of rotating shafts (122), and the outer surface of the rotating shaft (122) slightly protrudes the front side surface of the clamping plate (121).
5. The alloy material processing cutting device with positioning structure according to claim 4, characterized in that: The clamping assembly comprises a limiting groove (123); the upper end of the rotating shaft (122) penetrates through the upper surface of the clamping plate (121), the upper end surface of the rotating shaft (122) is provided with the limiting groove (123), and the limiting groove (123) is hexagonal.
6. The alloy material processing cutting device with positioning structure according to claim 5, characterized in that: The clamping assembly comprises a connecting rod (124), an electric push rod (125), a connecting plate (126), a pressing plate (127) and a limiting block (128); the left and right sides of the clamping plate (121) are provided with the connecting rod (124), one end of the connecting rod (124) away from the clamping plate (121) is connected with the electric push rod (125), the telescopic end of the electric push rod (125) is provided with the connecting plate (126), the top surface of the connecting plate (126) is provided with the pressing plate (127), the bottom surface of the pressing plate (127) is provided with a plurality of limiting blocks (128), and the limiting blocks (128) are matched with the limiting groove (123).
7. The alloy material processing cutting device with positioning structure according to claim 6, characterized in that: The upper surface of the workbench (1) is provided with a telescopic air cylinder (13), and the telescopic end of the telescopic air cylinder (13) is connected with the front side surface of the clamping plate (121) of the front clamping assembly.