Manganese alloy additive forming die

By designing a structure in the manganese alloy additive molding die that corresponds one-to-one with the ejector block and the die hole, and by using a support plate and a telescopic rod, the problem of difficult demolding after stamping the alloy additive was solved, thus achieving rapid demolding and efficient production.

CN224158943UActive Publication Date: 2026-04-24XUZHOU YONGSHENG METAL MATERIALS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
XUZHOU YONGSHENG METAL MATERIALS CO LTD
Filing Date
2025-05-20
Publication Date
2026-04-24

AI Technical Summary

Technical Problem

In existing technologies, alloy additives are difficult to demold after stamping, which affects production efficiency.

Method used

A manganese alloy additive molding die is designed, which adopts a one-to-one correspondence between the ejector die block and the die hole, and achieves rapid demolding of the manganese alloy block through the cooperation of the support plate and the telescopic rod.

Benefits of technology

It significantly improves the demolding efficiency of manganese alloy blocks and shortens the production cycle.

✦ Generated by Eureka AI based on patent content.

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    Figure CN224158943U_ABST
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Abstract

The utility model discloses a manganese alloy additive forming die which comprises stamping equipment and a die plate, fixing bases are evenly distributed at the bottom of the stamping equipment, stamping bases are detachably installed at the bottoms of the fixing bases, the die plate is arranged below the stamping bases, die holes are formed in the die plate, and the die holes and the stamping bases are arranged in a one-to-one correspondence mode. A first supporting plate is arranged below the mold plate, an ejection mold block is arranged at the position, located below the mold hole, of the first supporting plate, a stamping base is detachably installed at the bottom of the fixed base, and the stamping base is stamped into the mold hole and extrudes the ejection mold block, so that manganese alloy stamping forming machining is achieved, stretching and retracting of a first telescopic rod are achieved, and the mold plate is pulled down. And the ejection mold block is ejected into the mold hole, so that the formed manganese alloy block is ejected out, and the demolding production of the manganese alloy block is realized.
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Description

Technical Field

[0001] The utility model relates to the technical field of alloy additive production, and particularly relates to a forming die for manganese alloy additives. Background Art

[0002] The alloy additive forming die adopts a "convex"-shaped die body design and realizes batch forming through three groups of die pressing pits (each group has 6 semi-ellipsoidal grooves). 6 products can be pressed in a single operation, significantly shortening the production cycle 1. The cuboid positioning notch design between adjacent die pressing groups ensures the accuracy of die installation and alignment.

[0003] As in the prior art, the publication (announcement) number: CN206067010, a chemical alloy additive production die, the die body has a "convex" shape structure with a wider upper part and a narrower lower part, and a cuboid bottom platform is formed at the lower part. Three groups of die pressing pits are arranged on the upper end surface of the die body, and the three groups of die pressing pits are arranged side by side at equal intervals along the length direction of the die body. Each group of die pressing pits includes two rows of die pressing pits, three in each row, and the die pressing pits are semi-ellipsoidal. Two positioning notches are arranged between adjacent two groups of die pressing pits, and the two positioning notches are arranged opposite to each other on the edge of the die body. The positioning notch is cuboid-shaped, and a vertically downward pin hole is arranged at the right end of the die body.

[0004] The technical problem existing in the prior art is that after the alloy additive is stamped and formed, the demoulding process is not disclosed, resulting in great difficulty in demoulding after the alloy additive is stamped and formed, affecting the high-efficiency production efficiency of alloy additive agglomeration.

[0005] Therefore, a forming die for manganese alloy additives needs to be provided. Content of the Utility Model

[0006] Aiming at the problems existing in the above prior art, the utility model provides a forming die for manganese alloy additives, aiming to solve the above-mentioned technical problems.

[0007] To achieve the above objectives, this utility model provides the following technical solution: a manganese alloy additive forming mold, comprising a stamping device and a mold plate. The bottom of the stamping device is uniformly distributed with fixed bases. A stamping base is detachably installed on the bottom of the fixed base. A mold plate is positioned below the stamping base, and mold holes are provided on the mold plate, corresponding one-to-one with the stamping base. A support plate is positioned below the mold plate, and an ejector mold block is positioned below the mold holes on the support plate, corresponding one-to-one with the ejector mold block. A snap-fit ​​base is positioned at the bottom of the support plate, slidingly mounted on the snap-fit ​​base and a positioning snap block, and fixedly mounted with bolts. A second support plate is installed at the bottom of the positioning snap block, and telescopic rods are symmetrically arranged on both sides of the second support plate. A through hole is provided on the support plate at the top projection position of the telescopic rod, and the top of the telescopic rod passes through the through hole and is fixedly mounted to the mold plate.

[0008] Preferably, screw holes are provided on both sides of the support plate 2.

[0009] Preferably, four telescopic rods are symmetrically arranged on both sides of the support plate two, and positioning blocks are provided on the surface of the support plate two between the four telescopic rods.

[0010] Preferably, the stamping base includes a "T"-shaped locking block 2 and a stamping block. The bottom of the fixed base is provided with a "T"-shaped sliding groove 1. The locking block 2 and the sliding groove 1 are slidably installed and fixed by bolts.

[0011] Preferably, the cross-sections of the second card block, the mold hole, and the ejector mold block are all set to an elliptical structure.

[0012] Preferably, the snap-fit ​​base and the positioning snap-fit ​​block are both provided with a screw hole.

[0013] Preferably, the second card block and the first slide groove are both provided with a second screw hole.

[0014] In summary, this utility model provides a manganese alloy additive forming mold. In the initial use of this patented technology, the ejector mold block is sealed at the bottom of the mold hole. During stamping, manganese alloy is placed inside the mold hole, and the stamping equipment drives the fixed base downward. The bottom of the fixed base is detachably equipped with a stamping base. The stamping base is stamped into the mold hole and squeezes against the ejector mold block to realize the stamping forming process of manganese alloy.

[0015] The upper part of the support plate is provided with a slot, and the bottom of the ejector mold block is provided with a fourth locking block. The fourth locking block is inserted into the slot and rotated to lock, so as to realize the detachable installation of the ejector mold block and to realize the stamping and forming of manganese alloy blocks of different models. The top of the telescopic rod passes through the through hole and is fixedly installed with the mold plate, so as to realize the extension and retraction of the telescopic rod. When the mold plate is pulled down, the ejector mold block is pushed into the mold hole, so as to realize the ejection of the formed manganese alloy block and realize the demolding production of manganese alloy block. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of the manganese alloy additive molding die structure of this utility model;

[0017] Figure 2 This is a schematic diagram of the cross-sectional structure of the manganese alloy additive molding die of this utility model. Figure 1 ;

[0018] Figure 3 This is a schematic diagram of the cross-sectional structure of the manganese alloy additive molding die of this utility model. Figure 2 ;

[0019] Figure 4 This is a schematic diagram of the detachable ejector mold block and mold plate of this utility model;

[0020] In the diagram: 1. Stamping equipment; 2. Die plate; 3. Fixed base; 4. Stamping base; 5. Die hole; 6. Support plate one; 7. Ejector die block; 11. Snap-fit ​​base; 12. Positioning block; 13. Support plate two; 14. Telescopic rod one; 15. Through hole one; 16. Screw hole three; 17. Block two; 21. Stamping block; 22. Slide groove one; 23. Screw hole one; 24. Slot; 25. Block four; 26. Block three; 27. Detailed Implementation

[0021] The present invention will be further described below with reference to the accompanying drawings.

[0022] like Figures 1 to 4 As shown:

[0023] This utility model is a manganese alloy additive molding die, including a stamping device 1 and a die plate 2. The bottom of the stamping device 1 is uniformly distributed with fixed bases 3. A stamping base 4 is detachably installed on the bottom of the fixed base 3. The die plate 2 is arranged below the stamping base 4. The die plate 2 has die holes 5, which are arranged one-to-one with the stamping base 4. A support plate 6 is arranged below the die plate 2. An ejector die block 7 is arranged below the die holes 5 on the support plate 6. The die holes 5 and ejector die blocks 7 are arranged one-to-one. A snap-fit ​​base 11 is arranged at the bottom of the support plate 6. The snap-fit ​​base 11 and the positioning block 12 are slidably installed and fixedly installed by bolts. A second support plate 13 is installed at the bottom of the positioning block 12. Telescopic rods 14 are symmetrically arranged on both sides of the second support plate 13. A through hole 15 is opened at the top projection position of the telescopic rod 14 on the support plate 6. The top of the telescopic rod 14 passes through the through hole 15 and is fixedly installed with the die plate 2.

[0024] To achieve rapid demolding after stamping manganese alloy additives, the technical structure adopted in this patent is as follows: a stamping device 1 is installed on the upper part of the mold plate 2, and a support plate 2 13 is provided at the lower part to support the mold plate 2. Mold holes 5 are evenly opened on the mold plate 2. A support plate 1 6 is provided below the mold holes 5. An ejector mold block 7 is provided on the upper part of the support plate 1 6 corresponding to the mold holes 5. In the initial use, the ejector mold block 7 is sealed at the bottom of the mold holes 5. During stamping, manganese alloy is placed inside the mold holes 5, and the stamping device 1 drives the fixed base 3 downward. A stamping base 4 is detachably installed at the bottom of the fixed base 3. The stamping base 4 is stamped into the mold holes 5 and squeezes against the ejector mold block 7 to achieve stamping and forming of manganese alloy.

[0025] It should be noted that the ejector die block 7 is detachably installed with the support plate 6 to accommodate the stamping of different types of manganese alloy blocks. In this embodiment, a rotary snap-fit ​​installation method is used, specifically: a slot 25 is provided on the upper part of the support plate 6, and a snap-fit ​​block 27 is symmetrically arranged inside the slot 25. A snap-fit ​​block 26 is provided at the bottom of the ejector die block 7. The snap-fit ​​block 26 is inserted into the slot 25, and the snap-fit ​​block 3 27 and the snap-fit ​​block 4 26 are rotatably snapped together, so as to realize the detachable installation of the ejector die block 7 and to accommodate the stamping and forming of different types of manganese alloy blocks.

[0026] The bottom of support plate 6 is provided with a snap-fit ​​base 11, which is slidably installed with positioning block 12 and fixed by bolts. Support plate 2 13 is installed at the bottom of positioning block 12 to support support plate 2 13 and support plate 6. Through holes 15 are symmetrically arranged on both sides of support plate 6. Telescopic rods 14 are symmetrically arranged on both sides of support plate 2 13. The top of telescopic rods 14 passes through through holes 15 and is fixedly installed with mold plate 2 to realize the extension and retraction of telescopic rods 14. Pulling down mold plate 2, ejecting mold block 7 into the mold hole 5, realizing the ejection of the formed manganese alloy block, realizing the demolding production of manganese alloy block.

[0027] In at least one embodiment, in order to achieve the positioning and installation of the support plate 2 13 and ensure the alignment and installation of the stamping equipment 1 and the mold plate 2, screw holes 3 16 are provided on both sides of the support plate 2 13. The screw holes 3 16 are installed with bolts to pre-install the support plate 2 13, thereby achieving the alignment and installation of the stamping equipment 1 and the mold plate 2 and realizing efficient stamping production of manganese alloy blocks.

[0028] In at least one embodiment, to achieve the function of supporting and installing the second support plate 13 on the first support plate 6, and to achieve the function of quickly demolding the mold plate 2 by using telescopic rods on both sides of the second support plate 13; four telescopic rods 14 are symmetrically arranged on both sides of the second support plate 13, and positioning blocks 12 are provided on the surface of the second support plate 13 between the four telescopic rods 14. The telescopic rods 14 pull down the mold plate 2, ejecting the mold block 7 and ejecting the stamped manganese alloy block; the positioning blocks 12 are installed with the locking base 11 and fixed by bolts, so that the second support plate 13 supports the first support plate 6.

[0029] In at least one embodiment, in order to enable the stamping base 4 to be detachably installed so as to stamp different types of manganese alloy blocks, the structure adopted is as follows: the stamping base 4 includes a "T"-shaped locking block 17 and a stamping block 21, and the bottom of the fixed base 3 is provided with a "T"-shaped sliding groove 22. The locking block 17 and the sliding groove 22 are slidably installed and fixed by bolts.

[0030] In at least one embodiment, preferably, the cross-sections of the second card block 17, the mold hole 5, and the ejector mold block 7 are all set to an elliptical structure.

[0031] In at least one embodiment, the snap-fit ​​base 11 and the positioning snap-fit ​​block 12 are fixedly installed. The snap-fit ​​base 11 and the positioning snap-fit ​​block 12 are provided with a screw hole 23. The screw hole 23 is fixedly installed with a bolt to achieve the fixed installation of the snap-fit ​​base 11 and the positioning snap-fit ​​block 12.

[0032] In at least one embodiment, the second card block 17 and the first slide groove 22 are provided with a screw hole 24, which is fixedly installed with a bolt to realize the fixed installation of the first support plate 6 and the second support plate 13.

[0033] The embodiments described in this utility model are for illustrative purposes only and do not constitute a limitation on the scope of the claims. Other substantially equivalent substitutions that can be conceived by those skilled in the art are all within the protection scope of this utility model.

Claims

1. A manganese alloy additive forming die characterized by, The equipment includes a stamping device (1) and a die plate (2). The bottom of the stamping device (1) is evenly distributed with fixed bases (3). A stamping base (4) is detachably installed on the bottom of the fixed base (3). The die plate (2) is set below the stamping base (4). The die plate (2) has die holes (5) on it. The die holes (5) are set one-to-one with the stamping base (4). A support plate (6) is set below the die plate (2). An ejector die block (7) is set below the die holes (5) on the support plate (6). The die holes (5) and the ejector die block (7) are set below the die holes (5). The blocks (7) are set one-to-one. The bottom of the support plate (6) is provided with a snap-fit ​​base (11). The snap-fit ​​base (11) and the positioning block (12) are slidably installed and fixed by bolts. The bottom of the positioning block (12) is provided with a support plate (13). The two sides of the support plate (13) are symmetrically provided with telescopic rods (14). The support plate (6) is provided with a through hole (15) at the top projection position of the telescopic rod (14). The top of the telescopic rod (14) passes through the through hole (15) and is fixedly installed with the mold plate (2).

2. The manganese alloy additive molding die according to claim 1, characterized in that, Screw holes 3 (16) are provided on both sides of the support plate 2 (13).

3. A forming die for a manganese alloy additive according to claim 1, characterized in that Four telescopic rods (14) are symmetrically arranged on both sides of the support plate 2 (13), and positioning blocks (12) are provided on the surface of the support plate 2 (13) between the four telescopic rods (14).

4. A forming die for a manganese alloy additive according to claim 1, characterized in that The stamping base (4) includes a "T"-shaped locking block (17) and a stamping block (21). The bottom of the fixed base (3) is provided with a "T"-shaped sliding groove (22). The locking block (17) and the sliding groove (22) are slidably installed and fixed by bolts.

5. A forming die for a manganese alloy additive according to claim 1, wherein The cross-sections of the card block 2 (17), the mold hole (5), and the ejector mold block (7) are all set to elliptical structures.

6. A forming die for a manganese alloy additive according to claim 1, wherein The snap-fit ​​base (11) and the positioning snap-fit ​​block (12) are both provided with a screw hole (23).

7. A forming die for a manganese alloy additive according to claim 4, wherein The second card block (17) and the first slide groove (22) are both provided with the second screw hole (24).

Citation Information

Patent Citations

  • Chemical industry alloying agent makes mould

    CN206067010U