Stamping die convenient for auxiliary alignment and used for electronic product metal part production
The design of the side alignment mechanism and positioning mechanism solves the problem of difficult alignment in traditional molds, achieving precise alignment and tight fit between the upper and lower templates, thus improving the efficiency and quality of stamping production.
Patent Information
- Application Number
- CN202423323902.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-31
- Publication Date
- 2026-02-06
- Estimated Expiration
- 2034-12-31
AI Technical Summary
Traditional stamping dies have difficulties in quickly and accurately aligning the upper and lower templates, leading to human error and low production efficiency.
The system employs a side alignment mechanism and a positioning mechanism. Through the cooperation of sliders and springs, it achieves precise alignment of the upper and lower templates and uses magnetic adsorption to achieve end positioning, ensuring that the templates fit tightly.
It improves the accuracy and stability of template alignment, reduces stamping deviation, and enhances production efficiency and product quality.
Smart Images

Figure CN223875915U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to stamping die relevant technical field especially, a kind of stamping die for electronic product metal parts production with easy to assist alignment. BACKGROUND
[0002] In the field of stamping die processing, the precise positioning and stable cooperation of the die play a crucial role in the quality and production efficiency of the stamping product. Therefore, there is a particular need for a stamping die for electronic product metal parts production with easy to assist alignment.
[0003] Due to the deficiencies of traditional stamping die in the positioning and fixing of upper and lower templates, on the one hand, it is difficult to quickly and accurately align the upper and lower templates during die installation and debugging, usually relying on the experience and repeated measurement of the operator, which not only consumes a lot of time and manpower, but also easily causes human error, leading to the deviation of the relative position of the upper and lower templates, on the other hand, some dies are internally provided with positioning pins, which need to be installed up and down, and the limiting mechanism for horizontal sliding positioning is not suitable.
[0004] In view of the above problems, a stamping die for electronic product metal parts production with easy to assist alignment is proposed. UTILITY MODEL CONTENTS
[0005] The utility model aims to provide a kind of stamping die for electronic product metal parts production with easy to assist alignment, to solve the stamping die for electronic product metal parts production with easy to assist alignment of prior art proposed in the above background.
[0006] To achieve the above object, the utility model provides the following technical scheme: a kind of stamping die for electronic product metal parts production with easy to assist alignment, including upper template, the bottom of the upper template is equipped with lower template, the two sides of the upper template are equipped with side alignment mechanism, the two ends of the upper template are equipped with positioning mechanism;
[0007] The side alignment mechanism includes first sliding block installed on the two sides of the upper template, the two sides of the lower template are equipped with second sliding block, the top of the first sliding block is equipped with first spring, the bottom of the second sliding block is equipped with second spring, the inner wall of the second sliding block is equipped with bolt.
[0008] Preferably, the side alignment mechanism further includes an upper mounting plate installed on both sides of the upper template, and a lower mounting plate installed on both sides of the lower template.
[0009] Preferably, the upper mounting plate is above the lower mounting plate, the first sliding block is in the inner wall of the upper mounting plate and is in sliding connection with the upper mounting plate, and the second sliding block is in the inner wall of the lower mounting plate and is in sliding connection with the lower mounting plate.
[0010] Preferably, the first spring top is arranged on the upper mounting plate top wall, and the second spring bottom is arranged on the lower mounting plate bottom wall.
[0011] Preferably, the first slider bottom is arranged on the second slider inner wall, the first slider bottom is convex, and the second slider inner wall is concave.
[0012] Preferably, the positioning mechanism comprises positioning plates arranged at two ends of the upper die plate, the two ends of the lower die plate are provided with limiting plates, the bottom of the positioning plate is provided with a first magnetic strip, the top wall of the limiting plate is provided with a second magnetic strip, and the top of the limiting plate is provided with a baffle on both sides and is rotationally connected with the limiting plate.
[0013] Preferably, the positioning plate is arranged on the inner wall of the limiting plate, and the first magnetic strip is arranged on the top of the second magnetic strip.
[0014] Compared with the prior art, the utility model has the advantages that:
[0015] The stamping die for the production of electronic product metal parts is convenient to align, and the first slider is aligned and embedded into the groove of the second slider by manually applying force to the first slider and the second slider before stamping operation. The position of the upper die plate and the lower die plate can be finely adjusted in the process, so that the upper die plate and the lower die plate are aligned. When the first slider and the second slider are slid, a stretching force is formed on the spring, and after the two sliders are fixed, the stretching force of the spring acts on the corresponding sliders, so that the upper die plate and the lower die plate are more closely attached, the stability in the stamping process is improved, and the problems of stamping deviation and the like caused by the close attachment of the die plate are reduced.
[0016] The positioning plate in the positioning mechanism is automatically arranged on the inner wall of the limiting plate by the principle of magnetic attraction between the first magnetic strip at the bottom of the positioning plate and the second magnetic strip in the inner wall of the limiting plate, so that the preliminary positioning and alignment of the upper die plate and the lower die plate in the end direction are realized, the alignment and adjustment from the side are further improved by the side alignment mechanism, and the accuracy of the alignment of the upper and lower die plates is further improved. BRIEF DESCRIPTION OF DRAWINGS
[0017] Figure 1 It is a whole structure schematic view of the utility model;
[0018] Figure 2 It is a structure schematic view of the side alignment mechanism of the utility model;
[0019] Figure 3 It is an exploded structure schematic view of the side alignment mechanism of the utility model;
[0020] Figure 4 It is a sectional structure schematic view of the positioning mechanism of the utility model;
[0021] Figure 5 This is a schematic diagram of the positioning mechanism of this utility model.
[0022] In the diagram: 1. Upper template; 2. Lower template; 3. Side alignment mechanism; 301. First slider; 302. Second slider; 303. First spring; 304. Second spring; 305. Bolt; 306. Upper mounting plate; 307. Lower mounting plate; 4. Positioning mechanism; 401. Positioning plate; 402. Limiting plate; 403. First magnetic strip; 404. Second magnetic strip; 405. Baffle. Detailed Implementation
[0023] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention.
[0024] Example
[0025] like Figures 1-3 As shown, it includes an upper template 1, a lower template 2 at the bottom of the upper template 1, side alignment mechanisms 3 on both sides of the upper template 1, and positioning mechanisms 4 at both ends of the upper template 1. The side alignment mechanism 3 includes a first slider 301 installed on both sides of the upper template 1, a second slider 302 installed on both sides of the lower template 2, a first spring 303 at the top of the first slider 301, a second spring 304 at the bottom of the second slider 302, and a bolt 305 passing through the inner wall of the second slider 302. The side alignment mechanism 3 also includes an upper mounting plate 306 installed on both sides of the upper template 1 and a lower mounting plate 307 installed on both sides of the lower template 2.
[0026] It should be noted that, in this embodiment, during stamping, the upper template 1 and the lower template 2 are first placed vertically so that the upper mounting plate 306 and the lower mounting plate 307 are on the same plane. Then, force is manually applied to the first slider 301 and the second slider 302. At the connection between the first slider 301 and the second slider 302, the first slider 301 is aligned and embedded into the groove of the second slider 302. During this process, the positions of the upper template 1 and the lower template 2 are finely adjusted to align them. Then, the bolt 305 is passed through the first slider 301 and the second slider 302 and tightened to fix the two sliders, thereby completing the stamping of the upper template. The positions of the upper template 1 and the lower template 2 are adjusted to align them. Since the first spring 303 is located between the upper mounting plate 306 and the first slider 301, and the second spring 304 is located between the lower mounting plate 307 and the second slider 302, when the first slider 301 and the second slider 302 are slid, a tensile force is formed on the first spring 303 and the second spring 304. When the first slider 301 and the second slider 302 are fixed, the tension formed by the first spring 303 and the second spring 304 respectively forms a force on the first slider 301 and the second slider 302, making the upper template 1 and the lower template 2 fit more tightly.
[0027] likeFigure 4 、 5 As shown in the drawings, the positioning mechanism 4 comprises positioning plates 401 mounted at both ends of the upper die plate 1, and limiting plates 402 provided at both ends of the lower die plate 2, the bottom of the positioning plate 401 is provided with a first magnetic strip 403, the top wall of the limiting plate 402 is provided with a second magnetic strip 404, and the top of the limiting plate 402 is provided with a baffle 405 rotatably connected with the limiting plate 402.
[0028] It should be noted that in the process of aligning and embedding the first sliding block 301 into the inner wall of the second sliding block 302, the positioning plate 401 is arranged in the inner wall of the limiting plate 402, and the bottom of the positioning plate 401 is provided with the first magnetic strip 403, and the inner wall of the limiting plate 402 is provided with the second magnetic strip 404, and the positioning plate 401 is installed in the inner wall of the limiting plate 402 by the adsorption force of the first magnetic strip 403 due to the magnetic attraction, and then the baffle 405 is rotated, and the baffle 405 is fixed to the positioning plate 401 due to the damping of the baffle 405, and at this time, the upper die plate 1 and the lower die plate 2 are aligned and fixed.
[0029] The working principle of the utility model:
[0030] Referring to the drawings of the specification Figures 1-5 When stamping, first, the upper die plate 1 and the lower die plate 2 are placed upside down, so that the upper mounting plate 306 and the lower mounting plate 307 are in the same plane, then manual force is applied to the first sliding block 301 and the second sliding block 302, the first sliding block 301 is aligned and embedded into the groove of the second sliding block 302 at the connection of the first sliding block 301 and the second sliding block 302, in this process, the positions of the upper die plate 1 and the lower die plate 2 are finely adjusted to align them, then the bolt 305 passes through the first sliding block 301 and the second sliding block 302 and is tightened to fix the two sliding blocks, thereby completing the position adjustment of the upper die plate 1 and the lower die plate 2 to align them, and since the first spring 303 is arranged between the upper mounting plate 306 and the first sliding block 301, and the second spring 304 is arranged between the lower mounting plate 307 and the second sliding block 302, when the first sliding block 301 and the second sliding block 302 are slid, the first spring 303 and the second spring 304 form a tensile force, and when the first sliding block 301 and the second sliding block 302 are fixed, the tensile force of the first spring 303 and the second spring 304 respectively forms a force on the first sliding block 301 and the second sliding block 302, so that the upper die plate 1 and the lower die plate 2 are more tightly attached;
[0031] In the process that the first slider 301 is aligned and embedded into the inner wall of the second slider 302, the positioning plate 401 is arranged in the inner wall of the limiting plate 402, the bottom of the positioning plate 401 is provided with the first magnetic strip 403, the inner wall of the limiting plate 402 is provided with the second magnetic strip 404, the positioning plate 401 is installed in the inner wall of the limiting plate 402 due to magnetic attraction through the adsorption force of the first magnetic strip 403, then the baffle 405 is rotated, the baffle 405 has damping, and then the baffle 405 fixes the positioning plate 401, at this time, the upper mold plate 1 and the lower mold plate 2 are aligned and fixed.
[0032] Although the embodiments of the present application have been shown and described, it should be understood by those ordinary skilled in the art that various changes, modifications, replacements and modifications can be made to these embodiments without departing from the principles and spirits of the present application, and the scope of the present application is defined by the appended claims and their equivalents.
Claims
1. A stamping die for manufacturing metal parts for electronic products, facilitating alignment, characterized in that: The utility model provides a mould, including upper template (1), the bottom of upper template (1) is equipped with lower template (2), both sides of upper template (1) are equipped with side alignment mechanism (3), both ends of upper template (1) are equipped with positioning mechanism (4); The side alignment mechanism (3) includes the first slider (301) installed at both sides of the upper template (1), the second slider (302) is arranged at both sides of the lower template (2), the first spring (303) is arranged at the top of the first slider (301), the second spring (304) is arranged at the bottom of the second slider (302), and the bolt (305) is arranged in the inner wall of the second slider (302).
2. The stamping die for the production of metal parts of electronic products facilitating auxiliary alignment according to claim 1, characterized in that: The side alignment mechanism (3) further includes the upper mounting plate (306) installed at both sides of the upper template (1), and the lower mounting plate (307) is installed at both sides of the lower template (2).
3. The stamping die for the production of metal parts of electronic products facilitating auxiliary alignment according to claim 2, characterized in that: The upper mounting plate (306) is arranged above the lower mounting plate (307), the first slider (301) is arranged in the inner wall of the upper mounting plate (306) and is in sliding connection with the upper mounting plate (306), and the second slider (302) is arranged in the inner wall of the lower mounting plate (307) and is in sliding connection with the lower mounting plate (307).
4. The stamping die for the production of metal parts of electronic products facilitating auxiliary alignment according to claim 2, characterized in that: The top of the first spring (303) is arranged on the top wall of the upper mounting plate (306), and the bottom of the second spring (304) is arranged on the bottom wall of the lower mounting plate (307).
5. The stamping die for the production of metal parts of electronic products facilitating auxiliary alignment as claimed in claim 1 wherein: The bottom of the first slider (301) is arranged in the inner wall of the second slider (302), the bottom of the first slider (301) is convex, and the inner wall of the second slider (302) is concave.
6. The stamping die for the production of metal parts of electronic products facilitating auxiliary alignment according to claim 1, characterized in that: The positioning mechanism (4) includes the positioning plate (401) installed at both ends of the upper template (1), the limiting plate (402) is arranged at both ends of the lower template (2), the first magnetic stripe (403) is arranged at the bottom of the positioning plate (401), the second magnetic stripe (404) is arranged on the top wall of the limiting plate (402), the baffle (405) is arranged at both sides of the top of the limiting plate (402) and is in rotary connection with the limiting plate (402).
7. The stamping die for producing metal parts of electronic products with facilitated auxiliary alignment according to claim 6, characterized in that: The positioning plate (401) is arranged in the inner wall of the limiting plate (402), and the first magnetic stripe (403) is arranged on the top of the second magnetic stripe (404).