Stainless steel profiled part demolding equipment

By combining lifting, moving, and clamping components, the problem of workpiece clamping and conveying in stainless steel forming demolding equipment is solved, achieving automated production and improved safety.

CN223862704UActive Publication Date: 2026-02-03SHANGHAI PROSPERITY STARS IND LTD
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Patent Information

Application Number
CN202520501672.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-20
Publication Date
2026-02-03
Estimated Expiration
2035-03-20

AI Technical Summary

Technical Problem

Existing stainless steel forming demolding equipment cannot effectively clamp and transport the demolded workpieces, leading to production delays and safety hazards.

Method used

Employing lifting, moving, and clamping components, and driven by electric push rods and motors, the ejector plate is raised and lowered, the slider and slide plate are moved, and the clamping blocks are held in place, ensuring smooth workpiece transport.

Benefits of technology

It enables automated clamping and conveying of workpieces, avoiding production delays and safety hazards caused by manual operation, and improving production efficiency and safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a stainless steel profiled part demoulding equipment relates to profiled part demoulding technical field, including base, lower die block, ejector plate, two slider and two slide plate, lower die block is provided base top, ejector plate slide connection in lower die block, two slider are both provided base top, two slide plate slide connection in lower die block top, two slide plate slide connection in lower die block top, two slide plate slide connection in lower die block top, two slide plate slide connection in lower die block top, two slide plate slide connection in lower die block top, two slide plate slide connection in lower die block top, two slide plate slide connection in lower die block top. The two sliding plates are arranged above the two sliding blocks respectively, the base is provided with a lifting assembly for lifting the ejector plate, the top of the base is provided with a moving assembly for moving the sliding blocks, the tops of the sliding blocks are provided with adjusting assemblies for adjusting the sliding plates, and the sliding plates are provided with clamping assemblies for clamping profiled parts. According to the utility model, through the clamping assembly and the moving assembly, the effect of clamping and conveying the demoulded workpieces is achieved, the workpieces are prevented from being stacked in a mould area to cause production clamping stagnation, and the conditions of extrusion, clamping injury and even serious accidents caused by manually taking out the workpieces can be avoided.
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Description

Technical Field

[0001] This utility model relates to the field of demolding technology for pressed parts, specifically a demolding device for stainless steel pressed parts. Background Technology

[0002] Stainless steel forming parts are produced by stamping, stretching, bending, flanging, and shearing processes. Stainless steel sheets or coils are processed using molds and presses to form parts with specific shapes and functions. During the stamping, stretching, or forming process, stainless steel parts may be difficult to demold due to factors such as high friction, static electricity, strong adhesion, and complex shapes. Therefore, specialized demolding equipment is required to improve production efficiency and reduce product damage.

[0003] Traditional stainless steel forming demolding equipment has the problem of not being able to clamp and transport the formed parts after demolding. If the workpiece cannot be transferred to the next process in time, it will accumulate in the mold area, causing production to be stuck. If the workpiece needs to be manually removed after each stamping or stretching, the entire production rhythm will slow down. The upper mold is suspended above the workpiece. If the upper mold suddenly drops before the workpiece is completely detached, it will directly cause squeezing, pinching, or even serious accidents. In an emergency, the operator may not be able to evacuate quickly, which poses a great safety hazard. Utility Model Content

[0004] The purpose of this invention is to provide a stainless steel forming part demolding device to solve the problem in the prior art of being unable to clamp and transport the demolded forming part.

[0005] To achieve the above objectives, this utility model provides the following technical solution:

[0006] A stainless steel forming part demolding device, comprising:

[0007] Base;

[0008] The lower module is located on the top of the base;

[0009] The ejector plate is slidably connected to the interior of the lower module;

[0010] Two sliders, both of which are located above the base;

[0011] Two sliding plates, each positioned above a separate slider;

[0012] It also includes a lifting assembly for raising and lowering the ejector plate. The lifting assembly includes a first electric push rod, which is located at one end of the base. Ejector rods are slidably connected to both sides inside the base. The tops of the two ejector rods pass through the lower module and are connected to the ejector plate. Rollers are provided at the bottom of the two ejector rods. Two wedge blocks are provided on the output end of the first electric push rod. The two wedge blocks are slidably connected inside the base and are in movable contact with the two rollers respectively. A reset assembly for resetting the ejector rods is provided inside the base.

[0013] The base is provided with a moving component for moving the slider, the slider is provided with an adjusting component for adjusting the slide plate, and the slide plate is provided with a clamping component for clamping the forming part.

[0014] Based on the above technical solutions, this utility model also provides the following optional technical solutions:

[0015] In one alternative embodiment: the reset assembly includes two limiting discs, which are respectively located at the lower middle ends of the two ejector rods, and springs are provided between the top of the two limiting discs and the top of the base.

[0016] In one alternative embodiment: the moving component includes two first support frames, both of which are located on the top of the base, and two sliders are slidably connected inside the two first support frames. A first threaded rod is rotatably connected inside each of the two first support frames, and the two first threaded rods are threadedly connected to the two sliders respectively. A first motor is provided at one end of one side of the first support frame, and the output end of the first motor is connected to the corresponding first threaded rod. A rotating column is provided at the end of each of the two first threaded rods away from the first motor, and a synchronous pulley is provided on the outer surface of each of the two rotating columns. A synchronous belt is provided between the two synchronous pulleys.

[0017] In one alternative embodiment: the adjustment assembly includes two second support frames, which are respectively disposed on the top of the two sliders, and the two slide plates are respectively slidably connected inside the two second support frames. Each of the two second support frames is provided with a second motor at its top, and each of the two second motors is provided with a second threaded rod at its output end. The two second threaded rods are rotatably connected inside the second support frames, and the two second threaded rods are respectively threadedly connected to the two slide plates.

[0018] In one alternative embodiment: the clamping assembly includes two second electric push rods, which are respectively located on the ends of the two slide plates that are far apart from each other. The output ends of the two second electric push rods pass through the slide plates and are provided with clamping blocks.

[0019] In one alternative: the base is provided with support columns around its bottom perimeter.

[0020] In one alternative: mounting plates are provided around both of the first support frames.

[0021] In one alternative: both clamping plates have anti-slip patterns on the side that is close to each other.

[0022] Compared with the prior art, the beneficial effects of this utility model are as follows:

[0023] This invention achieves the effect of clamping and conveying the workpiece after demolding through the clamping component and the moving component, avoiding the accumulation of workpieces in the mold area, which would cause production to be stuck. It can also avoid the situation of squeezing, pinching, or even serious accidents caused by manually removing the workpiece. Attached Figure Description

[0024] Figure 1 This is a schematic diagram of the structure of this utility model.

[0025] Figure 2 This is a cross-sectional view of the structure of this utility model.

[0026] Figure 3 This utility model Figure 2 A schematic diagram of the structure at point A in the middle.

[0027] The components are as follows: 100, base; 200, lower module; 300, ejector plate; 400, slider; 500, slide plate; 601, first electric push rod; 602, ejector rod; 603, roller; 604, wedge block; 605, limiting plate; 606, spring; 701, first support frame; 702, first threaded rod; 703, first motor; 704, synchronous belt; 801, second support frame; 802, second motor; 803, second threaded rod; 901, second electric push rod; 902, clamping block. Detailed Implementation

[0028] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments.

[0029] In one embodiment, such as Figures 1-3As shown, a stainless steel forming part demolding device includes: a base 100, a lower module 200, an ejector plate 300, two sliders 400, two slide plates 500, and a lifting assembly. The lower module 200 is located on top of the base 100, and the ejector plate 300 is slidably connected to the interior of the lower module 200. Both sliders 400 are located above the base 100, and the two slide plates 500 are respectively located above the two sliders 400. The lifting assembly includes a first electric push rod 601, which is located at one end of the base 100. Ejector rods 602 are slidably connected to both sides inside the base 100, and the tops of both ejector rods 602 penetrate the lower module 200 and connect to the ejector plate 300. Rollers 603 are provided at the bottom of both ejector rods 602. Two wedge-shaped... Block 604, both wedge blocks 604 are slidably connected inside the base 100, and the two wedge blocks 604 respectively move and abut against the two rollers 603. The base 100 is provided with a reset component for resetting the ejector rod 602. The top of the base 100 is provided with a moving component for moving the slider 400. The top of the slider 400 is provided with an adjusting component for adjusting the slide plate 500. The slide plate 500 is provided with a clamping component for clamping the forming part. By activating the first electric push rod 601, it drives the two wedge blocks 604 to move inside the base 100. When the wedge blocks 604 contact the rollers 603, the rollers 603 will rise along the surface of the wedge blocks 604, thereby driving the two ejector rods 602 to rise, thereby driving the ejector plate 300 to rise inside the lower module 200 and ejecting the workpiece.

[0030] In one embodiment, such as Figure 2 and Figure 3 As shown, the reset assembly includes two limiting discs 605, which are respectively located at the lower middle ends of the two ejector rods 602. A spring 606 is provided between the top of the two limiting discs 605 and the top of the base 100. During the upward movement of the ejector rods 602, the limiting discs 605 will continuously compress the springs 606. When the wedge block 604 moves away from the ejector rods 602, the springs 606 will be released, causing the limiting discs 605 and the ejector rods 602 to descend, thereby causing the ejector plate 300 to reach the bottom of the lower module 200.

[0031] In one embodiment, such as Figure 1As shown, the moving component includes two first support frames 701, both of which are located on the top of the base 100. Two sliders 400 are slidably connected inside the two first support frames 701. A first threaded rod 702 is rotatably connected inside each of the two first support frames 701. The two first threaded rods 702 are threadedly connected to the two sliders 400. A first motor 703 is located at one end of one of the first support frames 701. The output end of the first motor 703 is connected to the corresponding first threaded rod 702. A rotating column is located at the end of each of the two first threaded rods 702 away from the first motor 703. A synchronous pulley is located on the outer surface of each of the two rotating columns. A synchronous belt 704 is located between the two synchronous pulleys. By starting the first motor 703, one first threaded rod 702, one rotating column, and one synchronous pulley are rotated. Subsequently, under the action of the synchronous belt 704, the other first threaded rod 702 is rotated, thereby moving the two sliders 400 within the two first support frames 701.

[0032] In one embodiment, such as Figure 1 As shown, the adjustment assembly includes two second support frames 801, which are respectively disposed on the top of the two sliders 400. The two slide plates 500 are slidably connected to the inside of the two second support frames 801. A second motor 802 is provided on the top of each of the two second support frames 801. A second threaded rod 803 is provided at the output end of each of the two second motors 802. The two second threaded rods 803 are rotatably connected to the inside of the second support frames 801 and are threadedly connected to the two slide plates 500. By starting the second motor 802, it drives the second threaded rod 803 to rotate, thereby driving the slide plate 500 to rise and fall inside the second support frame 801.

[0033] In one embodiment, such as Figure 1 As shown, the clamping assembly includes two second electric push rods 901. The two second electric push rods 901 are respectively located on the ends of the two slide plates 500 that are far apart from each other. The output ends of the two second electric push rods 901 pass through the slide plate 500 and are provided with clamping blocks 902. By activating the two second electric push rods 901, they drive the clamping blocks 902 to move closer to each other, thereby clamping the ejected workpiece.

[0034] In one embodiment, such as Figure 1 As shown, the base 100 is provided with support columns around its bottom, which facilitates the support of the base 100.

[0035] In one embodiment, such as Figure 1 As shown, mounting plates are provided around both of the first support frames 701 to facilitate the installation of the first support frames 701.

[0036] In one embodiment, such as Figure 1 As shown, the two clamping plates 902 are provided with anti-slip patterns on the side that is close to each other to prevent the workpiece from falling off during the clamping process.

[0037] The above embodiment discloses a stainless steel forming part demolding device. When the forming part needs to be demolded after processing, the first electric push rod 601 can be activated, causing two wedge blocks 604 to move inside the base 100. When the wedge blocks 604 contact the rollers 603, the rollers 603 rise along the surface of the wedge blocks 604, thereby causing the two ejector rods 602 to rise, which in turn causes the ejector plate 300 to rise inside the lower module 200, ejecting the workpiece. Then, the second motor 802 is activated, causing the second threaded rod 803 to rotate, thereby causing the slide plate 500 to rise and fall inside the second support frame 801, thus keeping the clamping block 902 and the workpiece at the same height. Finally, the two second motor push rods 901 are activated... The clamping blocks 902 are brought closer together to clamp the ejected workpiece. Then, the first motor 703 is started, which drives a first threaded rod 702, a rotating column, and a synchronous pulley to rotate. Then, under the action of the synchronous belt 704, it drives another first threaded rod 702 to rotate, thereby driving the two sliders 400 to move inside the two first support frames 701, thereby conveying the workpiece. During the upward movement of the ejector rod 602, the limiting plate 605 will continuously compress the spring 606. When the wedge block 604 moves away from the ejector rod 602, the spring 606 will be released, driving the limiting plate 605 and the ejector rod 602 to descend, thereby driving the ejector plate 300 to the bottom of the lower module 200 for reset.

[0038] The above description is merely a specific embodiment of this application, but the scope of protection of this application is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in this application should be included within the scope of protection of this application. Therefore, the scope of protection of this application should be determined by the scope of the claims.

Claims

1. A demolding device for stainless steel profiled parts, comprising: Base (100); The lower module (200) is located on the top of the base (100); Ejector plate (300), which is slidably connected to the interior of lower module (200); Two sliders (400) are provided above the base (100); Two sliding plates (500) are respectively disposed above two sliders (400); The invention is characterized by further including a lifting assembly for raising and lowering the ejector plate (300). The lifting assembly includes a first electric push rod (601), which is disposed on one end of the base (100). Ejector rods (602) are slidably connected to both sides inside the base (100). The tops of the two ejector rods (602) penetrate the lower module (200) and are connected to the ejector plate (300). Rollers (603) are provided at the bottom of the two ejector rods (602). Two wedge blocks (604) are provided on the output end of the first electric push rod (601). The two wedge blocks (604) are slidably connected inside the base (100). The two wedge blocks (604) are respectively in contact with the two rollers (603). A reset assembly for resetting the ejector rods (602) is provided inside the base (100). The base (100) is provided with a moving component on the top for moving the slider (400), the slider (400) is provided with an adjusting component on the top for adjusting the slide plate (500), and the slide plate (500) is provided with a clamping component for clamping the forming part.

2. The stainless steel forming part demolding equipment according to claim 1, characterized in that, The reset assembly includes two limiting discs (605), which are respectively located at the lower middle ends of the two ejector rods (602). A spring (606) is provided between the top of the two limiting discs (605) and the top of the base (100).

3. The stainless steel forming part demolding equipment according to claim 1, characterized in that, The moving component includes two first support frames (701), both of which are located on the top of the base (100), and two sliders (400) are slidably connected inside the two first support frames (701). A first threaded rod (702) is rotatably connected inside each of the two first support frames (701), and the two first threaded rods (702) are threadedly connected to the two sliders (400). A first motor (703) is provided on one end of one side of the first support frame (701), and the output end of the first motor (703) is connected to the corresponding first threaded rod (702). A rotating column is provided on the end of each of the two first threaded rods (702) away from the first motor (703), and a synchronous pulley is provided on the outer surface of each of the two rotating columns. A synchronous belt (704) is provided between the two synchronous pulleys.

4. The stainless steel forming part demolding equipment according to claim 1, characterized in that, The adjustment assembly includes two second support frames (801), which are respectively located on the top of the two sliders (400). The two slide plates (500) are slidably connected inside the two second support frames (801). A second motor (802) is provided on the top of each of the two second support frames (801). A second threaded rod (803) is provided at the output end of each of the two second motors (802). The two second threaded rods (803) are rotatably connected inside the second support frames (801) and are threadedly connected to the two slide plates (500) respectively.

5. A stainless steel forming part demolding device according to claim 1, characterized in that, The clamping assembly includes two second electric push rods (901), which are respectively located on the ends of the two slide plates (500) that are far apart from each other. The output ends of the two second electric push rods (901) pass through the slide plate (500) and are provided with clamping blocks (902).

6. A stainless steel forming part demolding device according to claim 1, characterized in that, The base (100) is provided with support columns around its bottom.

7. A stainless steel forming part demolding device according to claim 3, characterized in that, Mounting plates are provided around both of the first support frames (701).

8. A stainless steel forming part demolding device according to claim 5, characterized in that, The two clamping blocks (902) are provided with anti-slip patterns on the side that is close to each other.