The invention pertains to composite materials comprising precious metals, their manufacturing process and their uses.
Document US-7608127 describes composite materials consisting of a metallic matrix of precious metals or precious metal alloys, reinforced with a filler material of tungsten carbide or molybdenum carbide. During its manufacture, this composite material is obtained by infiltration of the liquid metal, under pressure, in a preform of tungsten carbide or molybdenum carbide. The composite material described in this document may have a metal concentration ranging from 56 to 75% by weight and a hardness greater than 171 VHN, possibly exceeding 500 VHN.
The primary object of the present invention is to propose a new composite material having characteristics at least as advantageous, if not better, than the prior art described above. To that end, the invention proposes a composite material combining:
We thereby obtain a composite material of low density, through the choice of the boron-based ceramic, and considerable hardness. In spite of the very low wettability of boron-based ceramics, the composite material can be realized primarily by liquid metal infiltration under pressure.
In various embodiments of the composite material according to the invention, we can advantageously have recourse to one and/or the other of the following arrangements:
Another object of the invention is a process to manufacture a composite material as defined above, said process having an infiltration step in which the precious metal or alloy is infiltrated under a pressure of 10 to 200 bar, preferably from 75 to 150 bar, in a porous preform consisting of said ceramic.
As indicated above, infiltration under pressure allows the metal to infiltrate the boron-based ceramic in spite of the very low wettability of this type of ceramic. Additionally, we thereby obtain a composite material appreciably without porosity.
In various embodiments of the process according to the invention, we can have recourse to either of the following situations:
Finally, another object of the invention is the use of a composite material as described above in clock making or jewelry making.
Other characteristics and advantages of the invention will appear from the following description of one of the embodiments, provided with respect to the attached drawings, in which:
and
As explained above, the invention pertains to a composite material combining:
Concerning the aforementioned alloys, it may, notably, involve:
The composite material may have a precious metal concentration greater than 75% by weight of the total weight of said material, for example on the order of 80%.
The technical ceramics here referred to are hard, refractory, lightweight materials, and very stable chemically. Their melting point is generally above 2000 degrees Celsius. The ceramics that can be used for the present invention notably comprise:
The ceramic may represent a volume fraction comprised between 55 and 80% of the material. It can be in the form of discrete particles having an equivalent diameter comprised between 0.1 μm and 1 mm, preferably comprised between 1 μm and 100 μm. It may be advantageous to have particles of various sizes in the same material, notably to obtain a spangled visual effect.
When the process of preparing the composite according to the invention comprises a sintering step, the ceramic then forms a continuous phase in which the ceramic grains are interconnected. The chosen ceramic will preferably be sufficiently electrically conductive to enable the use of electrical discharge machining. In particular, this is the case with the boron carbide having the statistical formula B4C. We can thus easily machine the composite material in spite of its extreme hardness.
We thereby obtain a material that is both light (low density) and very hard, therefore, nearly unscratchable, characterized by a hardness greater than 320 VHN, preferably greater than 400 VHN, or even much higher. This latter property is particularly interesting, notably for the use of composite materials in clockmaking or jewelry making.
We can realize the material described below notably by the process illustrated in
A commercial boron carbide powder, F1000 (particle size 5 μm), of statistical formula B4C, has been cold compacted at 200 MPa isostatic pressure (
The density of the sintered preform is 1.766 g/cm3 and the density of the powder is 2.48 g/cm3. Thus, the preform is 71.19% dense, leaving 28.81% porosity.
Pure gold is then infiltrated in the sintered preform at a temperature of 1200° C. under 150 bar gas (argon) pressure (
The material obtained is a metal-matrix composite having a density of 7.48 g/cm3. The concentration of pure gold in the composite is greater than 76% by mass and its hardness is comprised between 650 and 700 Vickers (30 N load, 16 seconds). The crystallographic section shown in
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/EP11/53494 | 3/8/2011 | WO | 00 | 9/4/2013 |