Anti-sliding clamping device for cold working machining of mold steel
The clamping assembly and sliding assembly of the anti-slip clamping device solve the problem of slipping during cold working of mold steel, achieves stable clamping and position adjustment, and improves work efficiency.
Patent Information
- Application Number
- CN202422777501.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-14
- Publication Date
- 2025-09-16
- Estimated Expiration
- 2034-11-14
AI Technical Summary
During the cold working process, mold steel is easy to slip due to its smooth surface, which makes it difficult for workers to operate and reduces efficiency.
An anti-slip clamping device is designed, which includes a clamping assembly and a sliding assembly. The mold steel is clamped by the tension of the damping spring, and the conveying roller is driven by a servo motor to push and pull the mold steel. The clamping block is provided with a stabilizing block and a limit groove to improve stability, and the slider slides on both sides of the cold working plate to adjust the position.
It effectively prevents mold steel from slipping, improves clamping stability, saves staff time and improves operating efficiency.
Smart Images

Figure CN223338286U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of mold steel processing, in particular to an anti-slip clamping device used for cold working of mold steel. Background Art
[0002] Mold steel has the characteristics of high strength and wear resistance. During the production process, after casting, it needs to undergo high-temperature forging to increase the density of the mold steel and allow it to be formed. When mold steel is forged at high temperature, it is generally forged into rectangular steel ingots, steel plates or round steel, and then fine-processed according to subsequent use requirements. The rectangular steel ingot takes up little space and is easy to stack and place. However, when cold working the mold steel, due to the relatively smooth surface of the mold steel, it is easy to slip on the cold working plate, which brings great trouble to the staff and reduces the work efficiency of the staff. Utility Model Content
[0003] (1) Technical problems to be solved
[0004] In order to solve the problem that when the mold steel is cold worked, the surface of the mold steel is relatively smooth and it is easy to slip on the cold working plate, which brings great trouble to the staff and reduces the work efficiency of the staff.
[0005] (2) Technical solution
[0006] The technical solution of the utility model is: an anti-slip clamping device for cold working of mold steel, including a sleeping cap body, a device body, a base, a cold working mechanism, a cold working plate, a clamping assembly, a sliding assembly and a controller. The bottom surface of the device body is installed with a base, the upper surface of the device body is fixedly installed with a cold working mechanism, the interior of the device body is provided with a cold working plate below the cold working mechanism, the surface of the cold working plate is provided with a clamping assembly, the interior of the device body is provided with a sliding assembly, the surface of the device body is provided with a controller, the controller is connected to the cold working mechanism signal, and by setting the clamping assembly, the mold steel is naturally lowered during use. It falls to the surface of the cold working plate and clamps and fixes the mold steel under the tension of the damping spring to prevent the mold steel from slipping on the surface of the cold working plate, reducing the trouble of the staff, and installing a stabilizing block and a limit groove on the clamping block can greatly improve the clamping stability of the clamping block, which can well prevent the slider from slipping, and cooperate with the sliding assembly. When in use, the sliders are installed on both sides of the cold working plate, the sliders are clamped in the blind grooves opened in the device body, and slide on the surface of the fixed rod. The position of the cold working plate can be moved. By starting the servo motor to drive the conveying roller to rotate, it is convenient to push and pull out the mold steel, saving the staff's time and having a good use effect.
[0007] Furthermore, the clamping assembly includes a fixed baffle, a damping spring, a clamping block, a stabilizing block and a limit groove. Fixed baffles are installed on the four side surfaces of the cold working plate, and two damping springs are symmetrically installed on one side surface of the fixed baffle. A clamping block is provided on one side of the fixed baffle, and the clamping block is connected to the damping spring. A stabilizing block with a convex structure is installed on the bottom surface of the fixed baffle. The surface of the cold working plate and the surfaces corresponding to the four stabilizing blocks are provided with limiting grooves. The stabilizing block slides in the limiting groove and is adapted to the limiting groove. The clamping block slides on the surface of the cold working plate through the stabilizing block and the limiting groove. By setting the clamping assembly, during use, the mold steel is naturally dropped to the surface of the cold working plate, and the mold steel is clamped and fixed under the tension of the damping spring to prevent the mold steel from slipping on the surface of the cold working plate, reducing the trouble of the staff, and installing the stabilizing block and the limit groove on the clamping block can greatly improve the clamping stability of the clamping block, and can well prevent the slider from slipping.
[0008] Furthermore, a corner position of the clamping block is provided with a beveled structure, which facilitates the mold steel to squeeze the beveled surface on one side of the clamping block during the falling process, so that the clamping block moves, and the mold steel naturally falls to the surface of the cold working plate, and the mold steel is clamped and fixed under the tension of the damping spring, which is easy to operate.
[0009] Furthermore, a plurality of anti-skid pads arranged at equal distances are installed on the surface of the clamping block to increase the friction between the clamping block and the mold steel, prevent the slider from slipping, and improve the stability of the mold steel.
[0010] Furthermore, bent baffles in a right-angle structure are installed at the four corners of the cold-working plate to restrict the square mold steel on the cold-working plate and prevent it from sliding.
[0011] Furthermore, the sliding assembly includes a slider, a fixed rod, a servo motor, a conveying roller and a fixed block. Two groups of L-shaped sliders are symmetrically installed on the surface of the cold-working plate. The cold-working plate slides in a blind groove opened on the surface of the device body through the slider. A fixing rod is installed in the blind groove opened on the surface of the device body. The fixing rod passes through the other end of the slider fixing rod and extends to the outside of the device body and is connected to the fixed block installed on the surface of the device body. A servo motor is installed on the surface of the device body. A plurality of conveying rollers are rotatably installed in the middle of the device body. The output end of the servo motor is connected to one of the conveying rollers, and the conveying rollers abut against the cold-working plate. By setting the sliding assembly, when in use, by installing sliders on both sides of the cold-working plate, the sliders are clamped in the blind groove opened in the device body, and slide on the surface of the fixed rod, the position of the cold-working plate can be moved. By starting the servo motor to drive the conveying roller to rotate, it is convenient to push and pull out the mold steel, saving the time of the staff and having a good use effect.
[0012] (3) Beneficial effects
[0013] Compared with the prior art, the beneficial effect of the present invention is that during use, the design allows the mold steel to naturally fall to the surface of the cold working plate, and clamps and fixes the mold steel under the tension of the damping spring, thereby preventing the mold steel from slipping on the surface of the cold working plate, reducing the trouble of the staff, and installing a stabilizing block and a limit groove on the clamping block, which can greatly improve the clamping stability of the clamping block, and cooperate with the sliding assembly. When in use, by installing sliders on both sides of the cold working plate, the sliders are clamped in the blind grooves opened in the device body, and slide on the surface of the fixed rod, the position of the cold working plate can be moved, and by starting the servo motor to drive the conveying roller to rotate, it is convenient to push and pull out the mold steel, saving the time of the staff and having a good use effect. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Figure 1 What is shown is a schematic diagram of the overall structure of the utility model;
[0015] Figure 2 Shown is a schematic diagram of the structure of the storage component in the present utility model;
[0016] Figure 3 The utility model is shown Figure 2 A magnified view of the details in the middle;
[0017] Figure 4 Shown is a cross-sectional structural diagram of the cold-working plate in the present invention;
[0018] Figure 5 Shown is a schematic diagram of the structure of the sliding assembly in the present utility model;
[0019] Figure 6 The utility model is shown Figure 5 Enlarged detail of point B in the middle.
[0020] Explanation of the accompanying drawings: 1-device body, 2-base, 3-cold working mechanism, 4-cold working plate, 5-clamping assembly, 51-fixed baffle, 52-damping spring, 53-clamping block, 54-stabilizing block, 55-limiting groove, 56-anti-slip pad, 57-bending baffle, 6-sliding assembly, 61-slider, 62-fixed rod, 63-servo motor, 64-transmission roller, 65-fixed block, 7-controller. DETAILED DESCRIPTION
[0021] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0022] Example 1:
[0023] See also Figure 1-6The utility model provides an embodiment: an anti-slip clamping device for cold working of mold steel, comprising a device body 1, a base 2, a cold working mechanism 3, a cold working plate 4, a clamping assembly 5, a sliding assembly 6 and a controller 7. The base 2 is installed on the bottom surface of the device body 1, the cold working mechanism 3 is fixedly installed on the upper surface of the device body 1, the cold working plate 4 is arranged below the cold working mechanism 3 inside the device body 1, the clamping assembly 5 is arranged on the surface of the cold working plate 4, the sliding assembly 6 is arranged inside the device body 1, and the device The surface of the body 1 is equipped with a controller 7, which is connected to the cold working mechanism 3 by signal. The clamping assembly 5 includes a fixed baffle 51, a damping spring 52, a clamping block 53, a stabilizing block 54 and a limiting groove 55. The four sides of the cold working plate 4 are equipped with fixed baffles 51. Two damping springs 52 are symmetrically installed on one side of the fixed baffle 51. A clamping block 53 is provided on one side of the fixed baffle 51. The clamping block 53 is connected to the damping spring 52. The bottom surface of the fixed baffle 51 is equipped with a stabilizing block 54 with a convex structure. 4. The surface of the cold-working plate 4 and the surfaces of the four stabilizing blocks 54 are provided with limiting grooves 55 at corresponding positions. The stabilizing blocks 54 slide in the limiting grooves 55 and are adapted to the limiting grooves 55. The clamping blocks 53 slide on the surface of the cold-working plate 4 through the stabilizing blocks 54 and the limiting grooves 55. By setting the clamping assembly 5, during use, the mold steel is naturally dropped to the surface of the cold-working plate 4, and the mold steel is clamped and fixed under the tension of the damping spring 52, so as to avoid the mold steel from slipping on the surface of the cold-working plate 4, thereby reducing the trouble of the staff and Installing a stabilizing block 54 and a limiting groove 55 on the clamping block 53 can greatly improve the clamping stability of the clamping block 53, and can effectively prevent the slider from slipping. In conjunction with the sliding assembly 6, when in use, by installing sliders 61 on both sides of the cold working plate 4, the sliders 61 are clamped in the blind grooves opened in the device body 1, and slide on the surface of the fixed rod 62, the position of the cold working plate 4 can be moved. By starting the servo motor 63 to drive the conveying roller 64 to rotate, it is convenient to push and pull out the mold steel, save the staff's time, and have a good use effect.
[0024] One corner of the clamping block 53 is arranged in a beveled structure, which makes it convenient for the mold steel to squeeze the beveled surface on one side of the clamping block 53 during the falling process, so that the clamping block 53 moves, and the mold steel naturally falls to the surface of the cold working plate 4, and the mold steel is clamped and fixed under the tension of the damping spring 52, which is easy to operate.
[0025] The surface of the clamping block 53 is provided with a plurality of equidistantly arranged anti-skid pads 56 to increase the friction between the clamping block 53 and the mold steel, prevent the slider from slipping, and improve the stability of the mold steel.
[0026] Bend baffles 57 are installed at the four corners of the cold working plate 4 in a right-angle structure to limit the square mold steel on the cold working plate 4 and prevent it from sliding.
[0027] Example 2:
[0028] See also Figure 1-6 In this embodiment, the sliding assembly 6 includes a slider 61, a fixing rod 62, a servo motor 63, a conveying roller 64 and a fixing block 65. Two sets of L-shaped sliders 61 are symmetrically installed on the surface of the cold working plate 4. The cold working plate 4 slides in the blind groove opened on the surface of the device body 1 through the slider 61. The fixing rod 62 is installed in the blind groove opened on the surface of the device body 1. The fixing rod 62 passes through the slider 61. The other end of the fixing rod 62 extends to the outside of the device body 1 and is connected to the fixing block 65 installed on the surface of the device body 1. The surface of the device body 1 is equipped with a servo motor. Motor 63, multiple conveying rollers 64 are rotatably installed in the middle of the device body 1, the output end of the servo motor 63 is connected to one of the conveying rollers 64, and the conveying roller 64 is in contact with the cold working plate 4. By setting the sliding component 6, when in use, by installing sliders 61 on both sides of the cold working plate 4, the sliders 61 are clamped in the blind grooves opened in the device body 1, and slide on the surface of the fixed rod 62, the position of the cold working plate 4 can be moved, and by starting the servo motor 63 to drive the conveying roller 64 to rotate, it is convenient to push and pull out the mold steel, saving the staff's time and having a good use effect.
[0029] The tool steel is then clamped and fixed on the cold working plate 4 under the tension of the damping spring 52, thereby preventing the tool steel from slipping on the cold working plate 4 and reducing the trouble for the staff. The stabilizing block 54 and the limiting groove 55 are installed on the clamping block 53, which can greatly improve the clamping stability of the clamping block 53 and prevent the slider from slipping. The anti-slip pad 56 is provided to increase the friction between the clamping block 53 and the mold steel to prevent the slider from slipping, thereby improving the stability of the tool steel. The sliding assembly 6 is used to cooperate with the sliding assembly 6. When in use, the sliders 61 are installed on both sides of the cold working plate 4, the sliders 61 are clamped in the blind grooves opened in the device body 1, and slide on the surface of the fixed rod 62, so that the position of the cold working plate 4 can be moved. By starting the servo motor 63, the conveying roller 64 is driven to rotate, which is convenient for pushing and pulling out the tool steel, saving the time of the staff and having a good use effect.
[0030] The embodiments of the present invention are described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Various changes can be made within the scope of knowledge possessed by those skilled in the art without departing from the purpose of the present invention.
Claims
1. An anti-slip clamping device for cold working of mold steel, comprising a device body (1), characterized in that: The invention comprises a base (2), a cold working mechanism (3), a cold working plate (4), a clamping assembly (5), a sliding assembly (6) and a controller (7); the base (2) is installed on the bottom surface of the device body (1); the cold working mechanism (3) is fixedly installed on the upper surface of the device body (1); a cold working plate (4) is arranged inside the device body (1) below the cold working mechanism (3); the clamping assembly (5) is arranged on the surface of the cold working plate (4); the sliding assembly (6) is arranged inside the device body (1); the controller (7) is installed on the surface of the device body (1); and the controller (7) is connected to the cold working mechanism (3) by signal.
2. The anti-slip clamping device for cold working of mold steel according to claim 1, characterized in that: The clamping assembly (5) comprises a fixed baffle (51), a damping spring (52), a clamping block (53), a stabilizing block (54) and a limiting groove (55); the fixed baffles (51) are installed on the four sides of the cold working plate (4); two damping springs (52) are symmetrically installed on one side of the fixed baffle (51); a clamping block (53) is provided on one side of the fixed baffle (51); the clamping block (53) and the damping spring (52) are symmetrically installed on the one side of the fixed baffle (51); 52), a stabilizing block (54) with a convex-shaped structure is installed on the bottom surface of the fixed baffle (51), and limiting grooves (55) are provided on the surface of the cold working plate (4) and the surfaces at positions corresponding to the four stabilizing blocks (54), and the stabilizing blocks (54) slide in the limiting grooves (55) and are adapted to the limiting grooves (55), and the clamping block (53) slides on the surface of the cold working plate (4) through the stabilizing block (54) and the limiting grooves (55).
3. The anti-slip clamping device for cold working of mold steel according to claim 2, characterized in that: A corner position of the clamping block (53) is arranged in a beveled surface structure.
4. The anti-slip clamping device for cold working of mold steel according to claim 2, characterized in that: The surface of the clamping block (53) is provided with a plurality of anti-slip pads (56) arranged at equal distances.
5. The anti-slip clamping device for cold working of mold steel according to claim 1, characterized in that: Bend baffles (57) arranged in a right-angle structure are installed at the four corners of the cold working plate (4).
6. The anti-slip clamping device for cold working of mold steel according to claim 1, characterized in that: The sliding assembly (6) includes a slider (61), a fixing rod (62), a servo motor (63), a conveying roller (64) and a fixing block (65). Two groups of L-shaped sliders (61) are symmetrically installed on the surface of the cold working plate (4). The cold working plate (4) slides in a blind groove opened on the surface of the device body (1) through the slider (61). A fixing rod (62) is installed in the blind groove opened on the surface of the device body (1). The fixing rod (62) passes through the slider (61). The other end of the fixing rod (62) extends to the outside of the device body (1) and is connected to the fixing block (65) installed on the surface of the device body (1). A servo motor (63) is installed on the surface of the device body (1). A plurality of conveying rollers (64) are rotatably installed in the middle of the device body (1). The output end of the servo motor (63) is connected to one of the conveying rollers (64), and the conveying roller (64) abuts against the cold working plate (4).