Stamping part discharging structure

CN224749960UActive Publication Date: 2026-09-15LAIJIN (CHANGCHUN) AUTO PARTS CO LTD
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Patent Information

Application Number
CN202522083048.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-28
Publication Date
2026-09-15
Estimated Expiration
2035-09-28

AI Technical Summary

Technical Problem

冲压件下落时易因惯性发生偏移、碰撞,导致表面划伤或变形,尤其对于薄壁、异形冲压件,报废率较高;同时,固定的朝向使得滑道无法与后续不同位置的收集或输送设备灵活配合,一定程度上影响了生产效率和出料的稳定性

Benefits of technology

通过设置由安装支架、输送组件以及导料组件组成的冲压件出料结构,其中输送组件中的输送皮带从下模具内穿过,能够直接承接冲压完成后落下的冲压件,避免了传统金属滑道中冲压件因惯性偏移、碰撞导致的表面划伤或变形,尤其对薄壁、异形冲压件的保护效果显著,降低了报废率;输送皮带上的若干防滑凸条能增加与冲压件之间的摩擦力,防止冲压件在输送过程中滑动偏移,保证输送的稳定性;同时,输送组件上的伺服电机驱动支撑辊带动输送皮带运转,可通过控制伺服电机的转速和转向,灵活调整输送速度和方向,使得该出料结构能与后续不同位置的收集或输送设备配合,提高了生产效率和设备的通用性;导料组件能对冲压件起到导向作用,确保冲压件准确落在后续收集或输送设备上,导料组件上的橡胶保护垫则能缓冲冲压件落下时的冲击力,进一步保护冲压件不受损坏。

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Abstract

The utility model discloses a stamping part discharging structure relates to the field of discharging structure, including the mounting support, and mounting support has two and is fixedly installed in the upper end of equipment main body symmetry, and one conveying assembly is installed on two mounting supports, and conveying assembly is through from the lower mould fixedly installed on equipment main body, and conveying assembly is by support roll, conveying belt, antiskid convex stripe and servo motor and is composed, and support roll has two and is rotatoryly installed on two mounting supports respectively, and conveying belt rotatoryly installs on two support rolls, and through setting by mounting support, conveying assembly and guide material subassembly and are composed stamping part discharging structure, wherein conveying belt in conveying assembly is through from the lower mould, can directly receive the stamping part that falls after stamping is completed, avoids the surface scratch or deformation of stamping part in traditional metal slide because of inertia deviation, collision, especially the protection effect of thin -walled, special -shaped stamping part is remarkable, and the scrap rate is reduced.
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Description

Technical Field

[0001] This utility model relates to the field of material discharge structures, and in particular to a material discharge structure for stamped parts. Background Technology

[0002] In the manufacturing process, stamping is a widely used processing technique. This process utilizes stamping equipment, specifically the precise closing action of the upper and lower dies on the machine to apply immense pressure to raw materials such as sheet metal, causing plastic deformation or separation of the material, thereby producing stamped parts that meet specific shape and size requirements. During this process, the stamped parts, after being separated by stamping, naturally detach from the lower die and then typically slide into a collection container via a simple metal slide, completing the unloading process.

[0003] However, the simple metal chutes used in the unloading stage of traditional stamping equipment have certain technical drawbacks. These chutes are mostly made of smooth metal and have a fixed orientation. When the stamped parts fall, they are prone to deviation and collision due to inertia, resulting in surface scratches or deformation, especially for thin-walled and irregularly shaped stamped parts, leading to a high scrap rate. At the same time, the fixed orientation makes it impossible for the chutes to flexibly cooperate with subsequent collection or conveying equipment at different positions, which to some extent affects production efficiency and unloading stability. Therefore, this application proposes a stamped parts unloading structure to solve the above problems. Utility Model Content

[0004] The main purpose of this utility model is to provide a stamping part discharge structure that can effectively solve the problems in the background art.

[0005] To achieve the above objectives, the technical solution adopted by this utility model is as follows: A stamping part discharge structure includes mounting brackets. Two mounting brackets are symmetrically fixedly installed on the upper end of the equipment body. A conveying assembly is mounted on the two mounting brackets. The conveying assembly passes through a lower die fixedly installed on the equipment body. The conveying assembly consists of support rollers, a conveyor belt, anti-slip ridges, and a servo motor. There are two support rollers, each rotatably mounted on one of the two mounting brackets. The conveyor belt is rotatably mounted on the two support rollers. Several anti-slip ridges are evenly fixedly installed on the outer wall of the conveyor belt. The output shaft of the servo motor is fixedly connected to one of the support rollers. A material guiding assembly is fixedly installed on the mounting brackets. The material guiding assembly consists of a metal guide hopper and a rubber protective pad. The rubber protective pad is fixedly installed on the lower inner wall of the metal guide hopper.

[0006] Preferably, a stamping assembly is installed on the main body of the equipment, and an upper die is fixedly installed on the stamping assembly above the lower die.

[0007] Preferably, the mounting bracket consists of a bottom U-shaped bracket, an upper base plate, and supporting vertical plates. The upper base plate is fixedly mounted on the upper end of the bottom U-shaped bracket by bolts. There are two supporting vertical plates, which are symmetrically fixedly mounted on the upper end of the upper base plate. The supporting vertical plates are provided with mounting shaft holes. The bottom U-shaped bracket is fixedly mounted on the main body of the equipment by bolts.

[0008] Preferably, the support rollers on the conveying assembly are rotatably mounted in two mounting shaft holes on two support vertical plates of the mounting bracket, the conveyor belt passes through the lower mold, and the servo motor is fixedly mounted on the outer end of one of the support vertical plates on one of the mounting brackets.

[0009] Preferably, the metal guide hopper on the guide assembly is fixedly mounted on the inner ends of two supporting vertical plates on the mounting bracket by bolts.

[0010] Compared with the prior art, the present invention has the following beneficial effects: By setting up a stamping part discharge structure consisting of a mounting bracket, a conveying assembly, and a guiding assembly, the conveyor belt in the conveying assembly passes through the lower die and can directly receive the stamped parts falling after stamping. This avoids surface scratches or deformation caused by inertial displacement and collisions of stamped parts in traditional metal slides, and is particularly effective in protecting thin-walled and irregularly shaped stamped parts, reducing the scrap rate. Several anti-slip ridges on the conveyor belt increase the friction between the stamped parts and prevent the stamped parts from sliding and deviating during the conveying process, ensuring the stability of the conveying. At the same time, the servo motor on the conveying assembly drives the support roller to rotate the conveyor belt. By controlling the speed and direction of the servo motor, the conveying speed and direction can be flexibly adjusted, allowing this discharge structure to cooperate with subsequent collection or conveying equipment at different locations, improving production efficiency and equipment versatility. The guiding assembly guides the stamped parts, ensuring that they fall accurately onto the subsequent collection or conveying equipment. The rubber protective pads on the guiding assembly buffer the impact force when the stamped parts fall, further protecting them from damage. Attached Figure Description

[0011] Figure 1 This is a schematic diagram of the overall structure of this utility model; Figure 2 This is a schematic diagram showing the positional relationship between the mounting bracket, conveying assembly, and material guiding assembly of this utility model. Figure 3 This is a schematic diagram of the structure of the conveying component of this utility model; Figure 4 This is a schematic diagram of the mounting bracket and material guiding assembly of this utility model.

[0012] In the diagram: 1. Mounting bracket; 2. Conveying assembly; 3. Material guiding assembly; 4. Equipment body; 5. Lower mold; 6. Stamping assembly; 7. Upper mold; 8. Bottom U-shaped bracket; 9. Upper base plate; 10. Supporting vertical plate; 11. Mounting shaft hole; 12. Support roller; 13. Conveyor belt; 14. Anti-slip convex strip; 15. Servo motor; 16. Metal guide hopper; 17. Rubber protective pad. Detailed Implementation

[0013] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.

[0014] Please see Figure 1 , Figure 2 , Figure 3 , Figure 4 As shown, a stamping part discharge structure includes mounting brackets 1. Two mounting brackets 1 are symmetrically fixedly installed on the upper end of the equipment body 4. A conveying assembly 2 is installed on each of the two mounting brackets 1. The conveying assembly 2 passes through the lower mold 5 fixedly installed on the equipment body 4. The conveying assembly 2 consists of support rollers 12, a conveyor belt 13, anti-slip ridges 14, and a servo motor 15. There are two support rollers 12, which are rotatably installed on the two mounting brackets 1 respectively. The conveyor belt 13 is rotatably installed on the two support rollers 12. Several anti-slip ridges 14 are evenly fixedly installed on the outer wall of the conveyor belt 13. The output shaft of the servo motor 15 is fixedly connected to one of the support rollers 12. A guide assembly 3 is fixedly installed on the mounting brackets 1. The guide assembly 3 consists of a metal guide hopper 16 and a rubber protective pad 17. The rubber protective pad 17 is fixedly installed on the lower inner wall of the metal guide hopper 16. By setting up a stamping part discharge structure composed of mounting brackets 1, conveying assembly 2, and guide assembly 3, the conveying assembly... The conveyor belt 13 in component 2 passes through the lower mold 5 and can directly receive the stamped parts that fall after stamping. This avoids surface scratches or deformation caused by inertial displacement and collision of stamped parts in traditional metal slides. It is especially effective in protecting thin-walled and irregularly shaped stamped parts and reduces the scrap rate. Several anti-slip ridges 14 on the conveyor belt 13 can increase the friction between the conveyor belt and the stamped parts, prevent the stamped parts from sliding and deviating during the conveying process, and ensure the stability of the conveying. At the same time, the servo motor 15 on the conveying component 2 drives the support roller 12 to drive the conveyor belt 13. The conveying speed and direction can be flexibly adjusted by controlling the speed and direction of the servo motor 15, so that the discharge structure can be matched with the collection or conveying equipment at different subsequent positions, improving production efficiency and equipment versatility. The guide component 3 can guide the stamped parts to ensure that the stamped parts fall accurately on the subsequent collection or conveying equipment. The rubber protective pad 17 on the guide component 3 can buffer the impact force when the stamped parts fall, further protecting the stamped parts from damage.

[0015] Specifically, a stamping assembly 6 is installed on the main body 4 of the equipment. An upper mold 7 is fixedly installed on the stamping assembly 6 above the lower mold 5. The mounting bracket 1 consists of a bottom U-shaped bracket 8, an upper base plate 9, and supporting vertical plates 10. The upper base plate 9 is fixedly installed on the upper end of the bottom U-shaped bracket 8 by bolts. There are two supporting vertical plates 10, which are symmetrically fixedly installed on the upper end of the upper base plate 9. The supporting vertical plates 10 have mounting shaft holes 11. The bottom U-shaped bracket 8 is fixedly installed on the main body 4 of the equipment by bolts. The support roller 12 on the conveying assembly 2 is rotatably installed in the two mounting shaft holes 11 on the two supporting vertical plates 10 of the mounting bracket 1. The conveyor belt 13 passes through the lower mold 5. The servo motor 15 is fixedly installed on the outer end of one of the supporting vertical plates 10 on one of the mounting brackets 1. The metal guide hopper 1 on the material guiding assembly 3... 6. The inner ends of the two support vertical plates 10 are fixed to the mounting bracket 1 by bolts. By controlling the rotation of the servo motor 15, the rotation direction of the support roller 12 can be changed, thereby changing the running direction of the conveyor belt 13, thus realizing the adjustment of the output direction of the stamped parts. When the servo motor 15 rotates forward, the conveyor belt 13 conveys the stamped parts in one direction, and when it rotates in reverse, it conveys them in the opposite direction. The width of the conveyor belt 13 must match the width of the feeding groove on the lower mold 5 to ensure that the stamped parts can fall accurately on the conveyor belt 13, and avoid the stamped parts falling off the edge of the conveyor belt 13 due to width mismatch, thus ensuring the stability of the conveying. Before use, the subsequent collection or conveying equipment and the guiding component 3 should be aligned in advance so that the stamped parts guided and slid down by the metal guide hopper 16 can accurately enter the subsequent equipment, preventing the situation of deviation and falling, and improving the output efficiency.

[0016] When stamping a workpiece, the workpiece material is first placed on the lower mold 5, and then the main body of the equipment 4 is started. At this time, the stamping component 6 drives the upper mold 7 to move downward and close with the lower mold 5 to complete the stamping. The stamped part falls from the lower mold 5 onto the conveyor belt 13 of the conveyor component 2. At this time, the anti-slip ridges 14 on the outer wall of the conveyor belt 13 can prevent the stamped part from sliding on the conveyor belt 13. At the same time, the servo motor 15 is started, and the servo motor 15 drives the support roller 12 to rotate on the support vertical plate 10 on the mounting bracket 1, thereby making the conveyor belt 13 run, and then conveying the stamped part to the guide component 3. Then the stamped part falls from the conveyor belt 13 into the metal guide hopper 16 and slides along the metal guide hopper 16 into the subsequent collection or conveying equipment. The rubber protective pad 17 can buffer the impact force when the stamped part falls into the metal guide hopper 16.

[0017] Obviously, the above embodiments are merely illustrative examples for clear explanation and are not intended to limit the implementation. Those skilled in the art can make other variations or modifications based on the above description. It is neither necessary nor possible to exhaustively list all possible implementations here. However, obvious variations or modifications derived therefrom are still within the protection scope of this invention.

Claims

1. A stamping part ejection structure, characterized in that: The device includes two mounting brackets (1) that are symmetrically fixedly installed on the upper end of the main body (4). A conveying assembly (2) is installed on each of the two mounting brackets (1). The conveying assembly (2) passes through the lower mold (5) fixedly installed on the main body (4). The conveying assembly (2) consists of a support roller (12), a conveyor belt (13), anti-slip convex strips (14), and a servo motor (15). There are two support rollers (12) that are rotatably installed on the two mounting brackets (1). The conveyor belt (13) is rotatably mounted on two support rollers (12). Several anti-slip convex strips (14) are evenly fixedly mounted on the outer wall of the conveyor belt (13). The output shaft of the servo motor (15) is fixedly connected to one of the support rollers (12). A material guide assembly (3) is fixedly mounted on the mounting bracket (1). The material guide assembly (3) consists of a metal material guide hopper (16) and a rubber protective pad (17). The rubber protective pad (17) is fixedly mounted on the lower inner wall of the metal material guide hopper (16).

2. The stamping part ejection structure according to claim 1, characterized in that: A stamping assembly (6) is installed on the main body (4) of the equipment, and an upper mold (7) is fixedly installed on the stamping assembly (6) and above the lower mold (5).

3. The stamping part ejection structure according to claim 2, characterized in that: The mounting bracket (1) consists of a bottom U-shaped bracket (8), an upper base plate (9), and a support vertical plate (10). The upper base plate (9) is fixedly installed on the upper end of the bottom U-shaped bracket (8) by bolts. There are two support vertical plates (10) that are symmetrically fixedly installed on the upper end of the upper base plate (9). The support vertical plate (10) is provided with mounting shaft holes (11). The bottom U-shaped bracket (8) is fixedly installed on the main body of the equipment (4) by bolts.

4. The stamping part ejection structure according to claim 3, characterized in that: The support roller (12) on the conveying assembly (2) is rotatably installed in two mounting shaft holes (11) on two support vertical plates (10) on the mounting bracket (1). The conveyor belt (13) passes through the lower mold (5). The servo motor (15) is fixedly installed on the outer end of one of the support vertical plates (10) on one of the mounting brackets (1).

5. The stamping part ejection structure according to claim 4, characterized in that: The metal guide hopper (16) on the guide assembly (3) is fixedly installed on the inner ends of two support vertical plates (10) on the mounting bracket (1) by bolts.