Titanium Composite Material and Method for Making It
A titanium composite material includes a titanium matrix material and a powder reinforced composite material with a volume ratio of 10%-70%. The titanium matrix material is disposed at an α phase, a β phase, an α+β phase, an omega phase, or an intermetallic α-1, α-2, α-3 phase. The powder reinforced composite material is selected from a ceramic powder material, a powder material with electric features or a magnetic powder material. Thus, the powder reinforced composite material is added into and combined with the titanium matrix material to form the titanium composite material by casting, agglomerating or pressing, so that the titanium matrix material contains the physical, chemical or electric features of the titanium matrix material and the powder reinforced composite material.
The present invention relates to a composite material and, more particularly, to a titanium composite material and a method for making it.
2. Description of the Related ArtA titanium alloy has a great strength and a lighter weight. However, the wearproof and heat conduction features of the conventional titanium alloy are poor. A ceramic material is added into the titanium alloy to increase the heat conduction, wearproof and surface hardness of the titanium alloy. The ceramic material includes carbide, nitride, oxide or boride. A powder material is added into the titanium alloy to increase the electric features of the titanium alloy, including a piezoelectric effect or pyroelectric effect. The powder material includes titanate, niobium compound, barium compound, strontium compound, tantalum compound, yttrium compound, or ferroelectric. A magnetic material is added into the titanium alloy to increase the magnetic effect of the titanium alloy. The magnetic material includes neodymium-iron-boron compound or samarium-cobalt compound.
The closest prior art reference of which the applicant is aware was disclosed in U.S. Pat. No. 5,897,830, entitled “P/M titanium composite casting”. However, the wearproof and heat conduction effects of the conventional titanium alloy are poor so that the conventional titanium alloy is not available for car parts that need high wearproof and heat conduction features.
BRIEF SUMMARY OF THE INVENTIONThe primary objective of the present invention is to provide a titanium composite material with high wearproof and high heat conduction features.
In accordance with the present invention, there is provided a titanium composite material comprising a titanium matrix material and a powder reinforced composite material added into and combined with the titanium matrix material by casting, agglomerating or pressing. The titanium matrix material is selected from a pure titanium or titanium alloy. The pure titanium of the titanium matrix material is disposed at an α phase, a β phase, an α+β phase, or an omega phase. The titanium alloy of the titanium matrix material is disposed at an α phase, a β phase, an α+β phase, an omega phase, or an intermetallic α-1, α-2, α-3 phase. The powder reinforced composite material has a diameter less than 0.8 mm, and has a volume ratio of 10%-70%. The powder reinforced composite material is selected from a ceramic powder material, a powder material or a magnetic powder material. The ceramic powder material of the powder reinforced composite material contains more than 10% of a component that is selected from at least one of a group including oxide or nitride. The powder material of the powder reinforced composite material contains more than 10% of a component that is selected from at least one of a group including titanate, niobium compound, barium compound, strontium compound, tantalum compound, yttrium compound, or ferroelectric. The magnetic powder material of the powder reinforced composite material contains more than 10% of a component that is selected from at least one of a group including neodymium-iron-boron compound or samarium-cobalt compound.
According to the primary advantage of the present invention, the powder reinforced composite material is added into the titanium matrix material to form the titanium composite material by casting, agglomerating or pressing, so that the titanium matrix material contains the physical, chemical or electric features of the titanium matrix material and the powder reinforced composite material.
Further benefits and advantages of the present invention will become apparent after a careful reading of the detailed description with appropriate reference to the accompanying drawings.
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In conclusion, in the titanium composite material 100 of the present invention, the powder reinforced composite material 20 is added into the titanium matrix material 10. The titanium matrix material 10 is disposed at an α phase, a β phase, an α+β phase, an omega phase, or an intermetallic α-1, α-2, α-3 phase. The powder reinforced composite material 20 may be selected from a ceramic powder material containing more than 10% of a component that is selected from at least one of a group including carbide, nitride, oxide or boride. After the titanium matrix material 10 produces an intermediate phase in the α phase, β phase or α+β phase, the powder reinforced composite material 20 maintains the original hardness of the titanium matrix material 10 to enhance the wearproof, heat conduction and maximum surface hardness, so that the titanium composite material 100 has high wearproof and high heat conduction features. In addition, the powder reinforced composite material 20 may be selected from a powder material with an electric feature, containing more than 10% of a component that is selected from at least one of a group including titanate, niobium compound, barium compound, strontium compound, tantalum compound, yttrium compound, or ferroelectric, so that the powder reinforced composite material 20 has electric features, including a piezoelectric effect or a pyroelectric effect. Thus, the titanium composite material 100 is available for a ceramic piezoelectric crystal, a pyroelectric element or a semiconductor target material. In addition, the powder reinforced composite material 20 may be selected from a magnetic powder material containing more than 10% of a component that is selected from at least one of a group including neodymium-iron-boron compound or samarium-cobalt compound, so that the powder reinforced composite material 20 produces a magnetic field. Thus, the titanium composite material 100 is available for a magnet product.
Accordingly, the powder reinforced composite material 20 is added into the titanium matrix material 10 to form the titanium composite material 100 by casting, agglomerating or pressing, so that the titanium matrix material 10 contains the physical, chemical or electric features of the titanium matrix material 10 and the powder reinforced composite material 20.
Although the invention has been explained in relation to its preferred embodiment(s) as mentioned above, it is to be understood that many other possible modifications and variations can be made without departing from the scope of the present invention. It is, therefore, contemplated that the appended claim or claims will cover such modifications and variations that fall within the true scope of the invention.
Claims
1. A titanium composite material comprising:
- a titanium matrix material; and
- a powder reinforced composite material added into and combined with the titanium matrix material by casting;
- wherein:
- the titanium matrix material is selected from a pure titanium or titanium alloy;
- the pure titanium of the titanium matrix material is disposed at an α phase, a β phase, an α+β phase, or an omega phase;
- the titanium alloy of the titanium matrix material is disposed at an α phase, a β phase, an α+β phase, an omega phase, or an intermetallic α-1, α-2, α-3 phase;
- the powder reinforced composite material has a diameter less than 0.8 mm, and has a volume ratio of 10%-70%;
- the powder reinforced composite material is selected from a ceramic powder material, a powder material or a magnetic powder material;
- the ceramic powder material of the powder reinforced composite material contains more than 10% of a component that is selected from at least one of a group including oxide or nitride;
- the powder material of the powder reinforced composite material contains more than 10% of a component that is selected from at least one of a group including titanate, niobium compound, barium compound, strontium compound, tantalum compound, yttrium compound, or ferroelectric; and
- the magnetic powder material of the powder reinforced composite material contains more than 10% of a component that is selected from at least one of a group including neodymium-iron-boron compound or samarium-cobalt compound.
2. The titanium composite material of claim 1, wherein the powder reinforced composite material is combined with the titanium matrix material by casting.
3. The titanium composite material of claim 1, wherein the powder reinforced composite material is combined with the titanium matrix material by agglomerating.
4. The titanium composite material of claim 1, wherein the powder reinforced composite material is combined with the titanium matrix material by pressing.
5. A method for making a titanium composite material, comprising:
- a first step of heating and melting a titanium matrix material and a powder reinforced composite material to form a casting liquid;
- a second step of stirring the casting liquid;
- a third step of pressuring the casting liquid;
- a fourth step of filling the casting liquid into a die; and
- a fifth step of cooling the die and stripping the die to form a product of a titanium composite material;
- wherein:
- the titanium matrix material is selected from a pure titanium or titanium alloy;
- the pure titanium of the titanium matrix material is disposed at an α phase, a β phase, an α+β phase, or an omega phase;
- the titanium alloy of the titanium matrix material is disposed at an α phase, a β phase, an α+β phase, an omega phase, or an intermetallic α-1, α-2, α-3 phase;
- the powder reinforced composite material has a diameter less than 0.8 mm, and has a volume ratio of 10%-70%;
- the powder reinforced composite material is selected from a ceramic powder material, a powder material or a magnetic powder material;
- the ceramic powder material of the powder reinforced composite material contains more than 10% of a component that is selected from at least one of a group including oxide or nitride;
- the powder material of the powder reinforced composite material contains more than 10% of a component that is selected from at least one of a group including titanate, niobium compound, barium compound, strontium compound, tantalum compound, yttrium compound, or ferroelectric; and
- the magnetic powder material of the powder reinforced composite material contains more than 10% of a component that is selected from at least one of a group including neodymium-iron-boron compound or samarium-cobalt compound.
6. A method for making a titanium composite material, comprising:
- a first step of mixing a titanium matrix material and a powder reinforced composite material to form a mixture;
- a second step of compressing the mixture at a normal temperature or under a heating condition to form a blank; and
- a third step of agglomerating and molding the blank to form a product of a titanium composite material;
- wherein:
- the titanium matrix material is selected from a pure titanium or titanium alloy;
- the pure titanium of the titanium matrix material is disposed at an α phase, a β phase, an α+β phase, or an omega phase;
- the titanium alloy of the titanium matrix material is disposed at an α phase, a β phase, an α+β phase, an omega phase, or an intermetallic α-1, α-2, α-3 phase;
- the powder reinforced composite material has a diameter less than 0.8 mm, and has a volume ratio of 10%-70%;
- the powder reinforced composite material is selected from a ceramic powder material, a powder material or a magnetic powder material;
- the ceramic powder material of the powder reinforced composite material contains more than 10% of a component that is selected from at least one of a group including oxide or nitride;
- the powder material of the powder reinforced composite material contains more than 10% of a component that is selected from at least one of a group including titanate, niobium compound, barium compound, strontium compound, tantalum compound, yttrium compound, or ferroelectric; and
- the magnetic powder material of the powder reinforced composite material contains more than 10% of a component that is selected from at least one of a group including neodymium-iron-boron compound or samarium-cobalt compound.
7. A method for making a titanium composite material, comprising:
- a first step of mixing a titanium matrix material and a powder reinforced composite material to form a mixture; and
- a second step of packing, filling or extruding the mixture into a specified die or tool and pressing and compacting the mixture to form a product of a titanium composite material;
- wherein:
- the titanium matrix material is selected from a pure titanium or titanium alloy;
- the pure titanium of the titanium matrix material is disposed at an α phase, a β phase, an α+β phase, or an omega phase;
- the titanium alloy of the titanium matrix material is disposed at an α phase, a β phase, an α+β phase, an omega phase, or an intermetallic α-1, α-2, α-3 phase;
- the powder reinforced composite material has a diameter less than 0.8 mm, and has a volume ratio of 10%-70%;
- the powder reinforced composite material is selected from a ceramic powder material, a powder material or a magnetic powder material;
- the ceramic powder material of the powder reinforced composite material contains more than 10% of a component that is selected from at least one of a group including oxide or nitride;
- the powder material of the powder reinforced composite material contains more than 10% of a component that is selected from at least one of a group including titanate, niobium compound, barium compound, strontium compound, tantalum compound, yttrium compound, or ferroelectric; and
- the magnetic powder material of the powder reinforced composite material contains more than 10% of a component that is selected from at least one of a group including neodymium-iron-boron compound or samarium-cobalt compound.
Type: Application
Filed: Jun 15, 2016
Publication Date: Dec 21, 2017
Inventor: Teng-Fei Wu (Taipei City)
Application Number: 15/182,677