Titanium-alloy substrate
10006107 ยท 2018-06-26
Assignee
Inventors
- Tien-Ken Liang (Tainan County, TW)
- Chun-Yung Huang (Tainan County, TW)
- Ming-Chia Tsai (Tainan County, TW)
- Weidong Xing (Tainan County, CN)
- Ning Zhang (Tainan County, CN)
Cpc classification
International classification
Abstract
The present invention discloses a titanium-alloy substrate which is formed plastically by performing die casting and forging to alloyed titanium at least one time. The present invention is characterized in that this titanium-alloy substrate is provided with a first structure layer which is arranged in a configuration of long axis crystal structure, and a second structure layer which is disposed on a side in adjacent to the first structure layer and is arranged in a configuration of equiaxed crystal structure.
Claims
1. A titanium-alloy substrate, being formed plastically by performing cast molding to alloyed titanium at least one time, wherein the titanium-alloy substrate is provided with a first structure layer which is arranged in a configuration of long axis crystal structure and a second structure layer which is disposed on a side in adjacent to the first structure layer and is arranged in a configuration of equiaxed crystal structure.
2. The titanium-alloy substrate according to claim 1, wherein the thickness of titanium-alloy substrate is less than 3 mm, and the first structure layer takes up more than 40% of volume in all of the titanium-alloy substrate.
3. The titanium-alloy substrate according to claim 2, wherein the first structure layer takes up 80% of volume in all of the titanium-alloy substrate, and the second structure layer takes up 20% of volume in all of the titanium-alloy substrate.
4. The titanium-alloy substrate according to claim 1, wherein the thickness of titanium-alloy substrate is between 3 mm and 8 mm, and the first structure layer takes up more than 20% of volume in all of the titanium-alloy substrate.
5. The titanium-alloy substrate according to claim 4, wherein the first structure layer takes up 40% of volume in all of the titanium-alloy substrate, and the second structure layer takes up 60% of volume in all of the titanium-alloy substrate.
6. The titanium-alloy substrate according to claim 1, wherein the thickness of titanium-alloy substrate is larger than 8 mm, and the second structure layer takes up more than 50% of volume in all of the titanium-alloy substrate.
7. The titanium-alloy substrate according to claim 6, wherein the first structure layer takes up 10% of volume in all of the titanium-alloy substrate, and the second structure layer takes up 90% of volume in all of the titanium-alloy substrate.
8. The titanium-alloy substrate according to claim 1, wherein the second structure layer is disposed on an outer surface layer at a side in adjacent to the first structure layer.
9. The titanium-alloy substrate according to claim 1, wherein the second structure layer is disposed on a local outer surface layer in adjacent to the first structure layer.
10. The titanium-alloy substrate according to claim 1, wherein the second structure layer is disposed on a neighboring side inside the first structure layer.
11. A titanium-alloy substrate, being formed plastically by performing cast molding to alloyed titanium at least one time, wherein the titanium-alloy substrate is provided with a first structure layer which is arranged in a configuration of long axis crystal structure and a second structure layer which is disposed on a side in adjacent to the first structure layer and is arranged in a configuration of equiaxed crystal structure, with an included angle of 3090 being formed between the first structure layer and the substrate surface.
12. The titanium-alloy substrate according to claim 11, wherein an included angle of 8090 is formed between the first structure layer and the substrate surface.
13. The titanium-alloy substrate according to claim 11, wherein the thickness of titanium-alloy substrate is less than 3 mm, and the first structure layer takes up more than 40% of volume in all of the titanium-alloy substrate.
14. The titanium-alloy substrate according to claim 13, wherein the first structure layer takes up 80% of volume in all of the titanium-alloy substrate, and the second structure layer takes up 20% of volume in all of the titanium-alloy substrate.
15. The titanium-alloy substrate according to claim 11, wherein the thickness of titanium-alloy substrate is between 3 mm and 8 mm, and the first structure layer takes up more than 20% of volume in all of the titanium-alloy substrate.
16. The titanium-alloy substrate according to claim 15, wherein the first structure layer takes up 40% of volume in all of the titanium-alloy substrate, and the second structure layer takes up 60% of volume in all of the titanium-alloy substrate.
17. The titanium-alloy substrate according to claim 11, wherein the thickness of titanium-alloy substrate is larger than 8 mm, and the second structure layer takes up more than 50% of volume in all of the titanium-alloy substrate.
18. The titanium-alloy substrate according to claim 17, wherein the first structure layer takes up 10% of volume in all of the titanium-alloy substrate, and the second structure layer takes up 90% of volume in all of the titanium-alloy substrate.
19. A titanium-alloy substrate, being formed plastically by performing cast molding to alloyed titanium at least one time, wherein the titanium-alloy substrate is provided with a first structure layer which is arranged in a configuration of long axis crystal structure and takes up more than 10% of volume in all of the titanium-alloy substrate, as well as a second structure layer which is arranged in a configuration of equiaxed crystal structure and takes up more than 20% of volume in all of the titanium-alloy substrate.
20. The titanium-alloy substrate according to claim 19, wherein the thickness of titanium-alloy substrate is less than 3 mm, and the first structure layer takes up more than 40% of volume in all of the titanium-alloy substrate.
21. The titanium-alloy substrate according to claim 20, wherein the first structure layer takes up 80% of volume in all of the titanium-alloy substrate, and the second structure layer takes up 20% of volume in all of the titanium-alloy substrate.
22. The titanium-alloy substrate according to claim 19, wherein the thickness of titanium-alloy substrate is between 3 mm and 8 mm, and the first structure layer takes up more than 20% of volume in all of the titanium-alloy substrate.
23. The titanium-alloy substrate according to claim 22, wherein the first structure layer takes up 40% of volume in all of the titanium-alloy substrate, and the second structure layer takes up 60% of volume in all of the titanium-alloy substrate.
24. The titanium-alloy substrate according to claim 19, wherein the thickness of titanium-alloy substrate is larger than 8 mm, and the second structure layer takes up more than 50% of volume in all of the titanium-alloy substrate.
25. The titanium-alloy substrate according to claim 24, wherein the first structure layer takes up 10% of volume in all of the titanium-alloy substrate, and the second structure layer takes up 90% of volume in all of the titanium-alloy substrate.
26. The titanium-alloy substrate according to claim 19, wherein the second structure layer is disposed on an outer surface layer at a side in adjacent to the first structure layer.
27. The titanium-alloy substrate according to claim 19, wherein the second structure layer is disposed on a local outer surface layer in adjacent to the first structure layer.
28. The titanium-alloy substrate according to claim 19, wherein the second structure layer is disposed on a neighboring side inside the first structure layer.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(8) Referring to
(9) Upon implementation, a metallic mold is provided and assembled into a casting chamber, and then the alloyed titanium is put into a smelting chamber. The alloyed titanium in the smelting chamber is heated up in vacuum, and when the metallic material in the smelting chamber is melted down, the casting chamber is vacuumized. After that, the melted alloyed titanium is filled into the metallic mold and a hinge press system is activated to drive the metallic mold to press the melted alloyed titanium, thereby forming the alloyed titanium plastically through the abovementioned cast molding. After the alloyed titanium has been cooled down, the titanium-alloy substrate 10 will be formed as shown in
(10) In principle, the titanium-alloy substrate 10 of the present invention can be manifested as a configuration of plate or slab in a predetermined thickness or as a configuration of embryo in a predetermined shape, depending upon the shipping or processing need. In using the titanium-alloy substrate 10, based upon the practical need of the titanium-alloy product to which the entire titanium-alloy substrate 10 is applied, all of the first structure layers 11 can be reserved optionally, or a part or all of the first structure layers 11 can be removed at a specific location of the titanium-alloy product through a simple processing of grinding or cutting or through a gate design, so as to achieve the object of adjusting the material properties easily.
(11) For example, if the titanium-alloy product to be processed requires a higher mechanical structure strength, all of the second structure layers 12 of the titanium-alloy substrate 10 can be reserved optionally, and then the titanium-alloy substrate 10 is processed into the titanium-alloy product in a predetermined size by a machine cutting method, such as a Golf club striking surface in
(12) Moreover, if the titanium-alloy product to be processed does not require specifically the mechanical structure strength but instead focuses on other material advantages of titanium alloy, then a part or all of the second structure layers can be removed through a simple treatment of grinding or cutting, allowing the titanium-alloy substrate 10 to be more suitable for being fabricated into the titanium-alloy product in a predetermined size by stamping or sheet-metal working equipment which is equipped with a low kinetic energy.
(13) It is worthy of mentioning that the titanium-alloy substrates in various thickness grades, various locations for disposing the second structure layers and the percentages of the second structure layers corresponding to the various thickness grades can be prefabricated based upon the processing need of various titanium-alloy products, in order to facilitate choosing directly a proper titanium-alloy substrate to be used in the application end. For example, as shown in
(14) Comparing with the prior art, the titanium-alloy substrate disclosed by the present invention is equipped with the advantage of adjusting the material properties of the application end easily. Therefore, the difficulty in processing and the processing cost of the application end can be reduced. In particular, the titanium-alloy substrates in various thickness grades and with the percentages of the second structure layers corresponding to the thickness grades can be even prefabricated based upon the processing need of various titanium-alloy products, so as to facilitate choosing directly the titanium-alloy substrate in a proper thickness grade to be used in the application end. Accordingly, the processing cost of the titanium-alloy product can be reduced and the processing quality of the titanium-alloy product can be assured by using a relatively more aggressive and reliable means.
(15) It is of course to be understood that the embodiments described herein is merely illustrative of the principles of the invention and that a wide variety of modifications thereto may be effected by persons skilled in the art without departing from the spirit and scope of the invention as set forth in the following claims.