METHOD FOR OBTAINING A ZIRCONIA-BASED ARTICLE HAVING A METALLIC APPEARANCE

20180057923 ยท 2018-03-01

Assignee

Inventors

Cpc classification

International classification

Abstract

The present invention concerns a method for obtaining a finished or semi-finished zirconia-based article, the surface of the article having a metallic external appearance and non-zero surface electrical conductivity, wherein the method includes the steps of: taking at least one zirconia article, pre-shaped in its finished or semi-finished form; placing said article in a chamber in which a hydrogen and carbon/nitrogen gas mixture is heated; heating said article and the gas mixture using at least one resistive element traversed by an electric current to obtain dissociation of the hydrogen and carbon/nitrogen based gas molecules and an increase in the temperature of said article; keeping said article in the reactive atmosphere thus created to obtain diffusion of the carbon/nitrogen atoms in the external surface of said article.

Claims

1. A method for obtaining a finished or semi-finished zirconia-based article, the article having a metallic external appearance and non-zero surface electrical conductivity, wherein the method includes the steps of: taking at least one zirconia article, pre-shaped in its finished or semi-finished form; placing said article in a chamber in which a gas mixture made of hydrogen and of carbon or nitrogen is heated by at least one resistive element made of conductive material and traversed by an electrical current, and heating the gas mixture in the chamber to obtain dissociation of the hydrogen and carbon or nitrogen based gas molecules and keeping said article in the reactive atmosphere thus created in order to heat the article and obtain a diffusion of carbon/nitrogen atoms in the external surface of said article, wherein prior to the step of heating the process gases contained in the chamber, a reduction step consisting in placing said article inside a chamber into which dihydrogen is injected and in heating the dihydrogen allowing diffusion towards the surface and release of the oxygen contained in said zirconia article.

2. The method according to claim 1, wherein the method further includes, during the step of heating the gases contained in the chamber, a diffusion towards the surface and release of the oxygen contained in said zirconia article.

3. The method according to claim 1, wherein the thickness of the transformed layer on the external surface of said article is comprised between 10 and 1,000 nm.

4. The method according to claim 3, wherein the thickness of the transformed layer on the external surface of said article is comprised between 20 and 200 nm.

5. The method according to claim 1, wherein said resistive element is made of a refractory metal selected from the list including niobium, molybdenum, tantalum, tungsten and rhenium.

6. The method according to claim 1, wherein said resistive element is a filament.

7. The method according to claim 1, wherein said chamber includes a single resistive element arranged inside the chamber for heating the process gases and the articles to be treated so as to carbide or nitride the articles in a homogeneous manner.

8. The method according to claim 1, wherein said chamber includes a plurality of resistive elements distributed inside the chamber for heating the process gases and the articles to be treated so as to carbide or nitride the articles in a homogeneous manner.

9. The method according to claim 1, wherein at least one of the process gases is injected via at least one resistive element heated by the electric current passing therethrough.

10. The method according to claim 1, wherein at least one of the process gases is dissociated before being injected into the main chamber.

Description

BRIEF DESCRIPTION OF THE DRAWINGS

[0030] The objects, advantages and features of the device according to the present invention will appear more clearly in the following detailed description of at least one embodiment of the invention, given solely by way of non-limiting example and illustrated by the annexed drawings, in which:

[0031] FIG. 1 schematically represents the article according to the invention;

[0032] FIG. 2 schematically represents the chamber for performing the method according to the invention;

[0033] FIGS. 3 and 4 schematically represent filament arrangements inside the chamber according to the invention.

DETAILED DESCRIPTION

[0034] By way of example in FIG. 1, there is provided a starting object formed by a zirconia article 1 having a tetragonal crystallographic configuration (zirconium oxide, ZrO.sub.2), white in colour and which is produced by the usual manufacturing techniques for ceramic articles, for example by sintering.

[0035] This article may be a finished product having the final shape in which it will be used, for example a part of generally parallelepiped shape which has already been mirror polished and is intended to form an external element of a watch, for example a watchband link. Of course, if required, the article may be a semi-finished product on which subsequent machining operations could be performed to adapt the article to its final use. Article 1 could be a part of a watch or of a piece of jewellery or of any article related to the luxury industry that may use this type of external element.

[0036] This article is then introduced into a chamber 10 inside which it will be treated as seen in FIG. 2. The treatment that will be applied is a carbiding or nitriding treatment. Art essential feature of the method is that it involves transformation of the surface of the article over a small thickness, on the order of 10 to 1,000 nm, wherein the zirconia (zirconium oxide) in the outer area 2 seen in FIG. 1 is transformed into zirconium carbide/nitride having a metallic appearance. There is therefore a surface modification of the zirconia structure into a new crystallographic structure corresponding to that of zirconium carbide/nitride and not an added coating capable of being removed or detached from the surface of the article, particularly when the latter is subjected to high wear conditions. More particularly, outer area 2 of the surface layer, which has the zirconium carbide/nitride structure, extends from the surface to a depth comprised between 20 and 200 nm.

[0037] In order to perform a carbiding or nitriding treatment, chamber 10 must contain a gas-filled atmosphere A containing hydrogen and carbon or nitrogen and be provided with heating means 20, these heating means making it possible to activate the treatment.

[0038] According to the invention, the heating means include at least one resistive element. In a first embodiment, this resistive element is a filament 21 made of refractory metal. This refractory metal is selected from the list including niobium, molybdenum, tantalum, tungsten and rhenium. In fact, heating means 20 may comprise a single filament 21, of large size, arranged inside said chamber for heating the process gases and the articles to be treated in a homogeneous manner, or a plurality of independent filaments arranged to ensure a homogeneous distribution of heat, as seen in FIGS. 3 and 4 respectively.

[0039] The filament or filaments are traversed by an electric current, causing an increase in the temperature of the filaments by the Joule effect. This temperature increase is ideally arranged to reach a temperature of the filament or filaments of more than 1500 C.

[0040] The temperature increase in the atmosphere inside the chamber allows treatment of the zirconia article to occur. Indeed, this temperature increase in the atmosphere inside the chamber results in dissociation of the gases, so that the atoms of hydrogen H and of carbon C or of nitrogen N are free, and an increase in the temperature of the zirconia part. Under the effect of heat and hydrogen atmosphere, part of the oxygen contained in the zirconia diffuses towards the surface and is released from the zirconia.

[0041] This partial zirconia reduction by diffusion of part of its oxygen towards its surface is concomitant with diffusion of carbon or nitrogen atoms from the surface towards the core of the article. Indeed, under the effect of heat, the carbon or nitrogen atoms dissociated from the chamber gas mixture will diffuse in the partially reduced zirconia. This diffusion of carbon or nitrogen atoms results in the appearance of a surface layer of these atoms combined with the partially reduced zirconia to obtain a layer of zirconium carbide or of zirconium nitride.

[0042] According to a feature of the article according to the invention, the surface layer includes a transition area located between the partially reduced zirconia core and the outer carbided/nitrided area, said transition area including zirconium oxycarbides/oxynitrides. It is therefore noted that the chemical composition of the surface layer varies as a function of depth measured from the surface of the article and changes continuously from stoichiometric zirconium carbide/nitride (ZrC/ZrN) at the surface to a transition area including zirconium oxycarbides/oxynitrides, then finally to the core of the sub-stoichiometric zirconium oxide (reduced zirconia) part.

[0043] According to another preferred feature of the invention, the carbon/nitrogen content of the zirconium oxycarbides/oxynitrides in the transition area decreases with depth, while their oxygen content increases with depth. The transition area thus includes zirconium oxycarbides/oxynitrides whose carbon/nitrogen content gradually decreases towards the core of the article, while the presence of oxygen increases gradually in the form of ZrOxCy/ZrO.sub.xN.sub.y type compounds and gradually reaches the core of the article which is essentially formed of partially reduced zirconia of the ZrO.sub.2-x type. It will of course be understood that the transition between these various areas occurs gradually.

[0044] The articles obtained by this method acquire some novel properties, particularly non-zero surface electrical conductivity, a colour close to platinum (carbiding) or yellow gold (nitriding) and a metallic shine, while maintaining the properties of ceramics, in particular their very high hardness and resistance to wear and corrosion.

[0045] This use of resistive elements heated by an electric current has the advantage of not producing soot like the plasma method. The soot produced using the plasma method is dirty and abrasive so that handling the soot covered article can result in scratches appearing on said article.

[0046] In a second embodiment, the resistive element or elements take the form of pipes made of a resistive material, in which at least one of the gases used in the method flows, the remainder of the gases used in the method can be injected by a second distribution system. When the pipe is traversed by an electric current, it starts to heat the atmosphere in the chamber and said at least one process gas flowing into said pipe. Openings in said pipe allow said process gas to be released/injected into the chamber.

[0047] This second embodiment makes it possible to increase the dissociation efficiency of the gas or gases used in the method and to take advantage of the configuration of resistive elements inside the chamber to ensure that distribution of the injection of the reactive gas results in a homogeneous method over the entire load. In a variant, a preliminary zirconia reduction step may be provided. This reduction step is performed before the carbiding/nitriding step and consists in placing said article in an atmosphere chamber into which dihydrogen H.sub.2 is injected. The atmosphere in the chamber is heated so that the article exhibits a temperature increase causing a diffusion of the oxygen contained in the zirconia towards its surface to leave the zirconia.

[0048] This reduction step can be performed in a specific chamber or in the same chamber as the carbiding/nitriding operation. In that case, the chamber includes means for modifying the nature of the atmosphere inside said chamber.

[0049] It will be clear that various alterations and/or improvements and/or combinations evident to those skilled in the art may be made to the various embodiments of the invention set out above without departing from the scope of the invention defined by the annexed claims.