MOLD FOR PREPARING LARGE-SIZE RARE EARTH MAGNESIUM ALLOY INGOT WITHOUT TAIL SHRINKAGE BY BACK PRESSURE SEVERE PLASTIC DEFORMATION
20230321705 · 2023-10-12
Inventors
- Zhimin Zhang (Taiyuan City, CN)
- Jianmin Yu (Taiyuan City, CN)
- Mei Cheng (Taiyuan City, CN)
- Zhe Chen (Taiyuan City, CN)
- Zhen Wang (Taiyuan City, CN)
Cpc classification
Y02P70/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
The present disclosure discloses a mold for preparing large-size rare earth magnesium alloy ingot without tail shrinkage by back pressure severe plastic deformation, which includes a male mold, a female mold, a recoverable discard block and a back pressure plate connected with a pushing cylinder of the press machine. The female mold is provided with an upper mold cavity and a lower mold cavity, an upper part of the upper mold cavity is configured for placing blanks, the recoverable discard block and the male mold, and a lower part of the upper mold cavity is inclined inward to form an extrusion deformation area. The recoverable discard block is configured to be filled in an extrusion deformation area and restored through deformation. The present disclosure can solve the existence of the discard in the traditional forward extrusion and the tail shrinking phenomenon caused by the uneven metal flow.
Claims
1. A mold for preparing large-size rare earth magnesium alloy ingot without tail shrinkage by back pressure severe plastic deformation, comprising a male mold installed on an upper workbench of a press machine, a female mold installed on a lower workbench of the press machine, a recoverable discard block and a back pressure plate connected with a pushing cylinder of the press machine, wherein the female mold is provided with an upper mold cavity and a lower mold cavity, an upper part of the upper mold cavity is configured for placing blanks, the recoverable discard block and the male mold, and a lower part of the upper mold cavity is inclined inward to form an extrusion deformation area communicated with the lower mold cavity; the recoverable discard block is separated between the blank and the male mold, the recoverable discard block is made of deformable material, and the recoverable discard block is configured to be deformed and filled in an extrusion deformation area and restored through deformation; an upper part of the back pressure plate is fitted in the lower mold cavity, a molding cavity is formed between the upper part of the back pressure plate and the lower mold cavity, and an upper surface of the back pressure plate is raised in a middle.
2. The mold for preparing large-size rare earth magnesium alloy ingot without tail shrinkage by back pressure severe plastic deformation according to claim 1, wherein the recoverable discard block is in a molten state at high temperature, and the recoverable discard block is a brittle solid at low temperature and is broken into solid powder when pressed in the extrusion deformation area.
3. The mold for preparing large-size rare earth magnesium alloy ingot without tail shrinkage by back pressure severe plastic deformation according to claim 2, wherein the mold further comprises an extrusion restoration mold, wherein the recoverable discard block is crushed into solid powder under pressure and then put into the extrusion restoration mold to recover into the recoverable discard block.
4. The mold for preparing large-size rare earth magnesium alloy ingot without tail shrinkage by back pressure severe plastic deformation according to claim 3, wherein the extrusion restoration mold comprises a pressing box and a pressing block, the pressing box is provided with a groove, the recoverable discard block is crushed into solid powder under pressure and placed in the groove, and the solid powder is restored into recoverable discard block under high temperature.
5. The mold for preparing large-size rare earth magnesium alloy ingot without tail shrinkage by back pressure severe plastic deformation according to claim 1, wherein the recoverable residue block is made of a mixture of fluorite powder and graphite.
6. The mold for preparing large-size rare earth magnesium alloy ingot without tail shrinkage by back pressure severe plastic deformation according to claim 1, wherein an upper part of the lower mold cavity is inclined to expand outward from top to bottom, so that a side part of the extrusion deformation area forms an annular inner flange.
7. The mold for preparing large-size rare earth magnesium alloy ingot without tail shrinkage by back pressure severe plastic deformation according to claim 1, wherein a width of the lower mold cavity is greater than that of the upper mold cavity.
8. The mold for preparing large-size rare earth magnesium alloy ingot without tail shrinkage by back pressure severe plastic deformation according to claim 1, wherein the back pressure plate is in T-shape.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016] The present invention will become more readily apparent to those ordinarily skilled in the art after reviewing the following detailed description and accompanying drawings, in which:
[0017]
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[0027]
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
[0028] In order to more clearly illustrate the embodiments of the present disclosure or the technical solutions in the prior art, the following will briefly introduce the drawings that need to be used in the description of the embodiments or the prior art. It is apparent that the drawings in the following description are only some embodiments of the present disclosure. For those skilled in the art, other drawings can be obtained from these drawings without paying creative labor.
[0029] The present disclosure is a mold for preparing large-size rare earth magnesium alloy ingot without tail shrinkage by back pressure severe plastic deformation, as shown in
[0030] The female mold 2 is provided with an upper mold cavity 21 and a lower mold cavity 22. The upper mold cavity 21 and the lower mold cavity 22 are located on the same central axis, and the upper part of the upper mold cavity 21 is configured for placing blanks 5, the recoverable discard block 3 and the male mold 1. There is an extrusion deformation area 23 provided between the upper mold cavity 21 and the lower mold cavity 22. The lower part of the upper mold cavity 21 is inclined inward to form the extrusion deformation area 23 communicated with the lower mold cavity 22. The upper part of the lower mold cavity 22 is connected with the extrusion deformation area 23. The upper part of the lower mold cavity 22 is inclined to expand outward from top to bottom, so that the side part of the extrusion deformation area 23 forms an annular inner flange 24, and the formed multiple turning angles improve the plastic deformation degree. The back pressure plate 4 is T-shaped, and the upper part of the back pressure plate 4 is fitted in the lower mold cavity 22 to form a molding cavity between the upper part of the back pressure plate 4 and the lower mold cavity 22, and the lower part of the back pressure plate 4 is connected to the pushing cylinder of the press machine.
[0031] As shown in
wherein, ε.sub.1 is the strain at which the blank diameter changes from d1 to d, ε.sub.2 is the strain at which the blank diameter changes from d to D.
[0032] Further, to achieve severe plastic deformation ε.sub.2, it is necessary to design the upper surface of the back pressure plate 4 as an external convex structure, that is, the middle of the upper surface of the back pressure plate 4 is raised. In order to prevent tail shrinkage and counteract the friction that prevents metal flow during upsetting, thus the following formula is satisfied:
[0033] As shown in
[0034] As shown in
[0035] The present disclosure further provides a method for preparing large-size rare earth magnesium alloy ingot without tail shrinkage by back pressure severe plastic deformation, and the method includes the following steps: [0036] S1: providing cylindrical magnesium alloy bar; [0037] S2: homogenizing the cylindrical magnesium alloy bar as cylinder blank 5; [0038] S3: heating the cylinder blank 5 to the forming temperature and holding the temperature, and heating the preparation mold, back pressure plate 4, pressing box 61 and pressing block 62 above the experimental temperature and holding the temperature for half an hour; [0039] S4: installing the preparation mold after preheating and heat preservation on the pressing machine, and evenly spraying organic graphite lubricant on the male mold 1 and the female mold 2; [0040] S6: putting the cylinder blank 5 after homogenization and heat treatment into the upper mold cavity 21 of the male mold 2; [0041] S7: placing the recoverable discard block 3 above the cylinder blank 5; [0042] S8: in the initial stage of extrusion forming, adjusting the height of the back pressure plate 4 to the outlet of the extrusion deformation area 23 by the upward movement of the pushing cylinder. First, the pressing machine drives the male mold 1 to move downward and gradually extrudes the cylinder blank 5 into the extrusion deformation area 23. As shown in
[0044] The male mold 1 and the female mold 2 are connected to the upper and lower workbenches through fasteners. The method also includes S10: after the work is completed, molding the male mold 1 and the mold 2 together to perform a mold closing action, then loosening the fasteners, and then removing the preparation mold.
[0045] The description above is only a preferred embodiment of the present disclosure, not a limitation on the present application. All equivalent modification made based on the principle of the present application shall fall into the scope of the present application.