METHODS FOR FORMING POLYCRYSTALLINE MATERIALS INCLUDING PROVIDING MATERIAL WITH SUPERABRASIVE GRAINS PRIOR TO HPHT PROCESSING
20180133673 ยท 2018-05-17
Inventors
Cpc classification
F16C2352/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/043
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E21B10/567
FIXED CONSTRUCTIONS
International classification
B01J3/06
PERFORMING OPERATIONS; TRANSPORTING
F16C33/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Grains of superabrasive material may be infiltrated with a molten metal alloy at a relatively low temperature, and the molten metal alloy may be solidified within interstitial spaces between the grains of superabrasive material to form a solid metal alloy having the grains of superabrasive material embedded therein. The solid metal alloy with the grains of superabrasive material embedded therein may be subjected to a high pressure and high temperature process to form a polycrystalline superabrasive material. A polycrystalline superabrasive material also may be formed by depositing material on surfaces of grains of superabrasive material in a chemical vapor infiltration process to form a porous body, which then may be subjected to a high pressure and high temperature process. Polycrystalline compacts and cutting elements including such compacts may be formed using such methods.
Claims
1. A method of forming a polycrystalline compact, comprising: depositing a layer of catalyst material on grains of superabrasive material to form a three-dimensional solid porous body, the three-dimensional solid porous body comprising the grains of superabrasive material bonded to one another by the catalyst material deposited thereon and having a shape of the polycrystalline compact to be formed; infiltrating pores of the three-dimensional solid porous body with a molten metal alloy at a temperature of about 1200 C. or less and cooling and solidifying the molten metal alloy within the pores of the three-dimensional solid porous body to form a solid metal alloy within the three-dimensional solid porous body, wherein the grains of superabrasive material within the three-dimensional solid porous body are free of inter-granular bonds directly between the grains of superabrasive material; and subjecting the three-dimensional solid porous body having the solid metal alloy therein to a high pressure and high temperature process to form inter-granular bonds between the grains of superabrasive material.
2. The method of claim 1, wherein depositing the layer of catalyst material on the grains of superabrasive material comprises depositing the layer of catalyst material on grains of superabrasive material to form a three-dimensional solid porous body having a cylindrical disc shape.
3. The method of claim 1, wherein depositing the layer of catalyst material on the grains of superabrasive material to form the three-dimensional solid porous body comprises forming the three-dimensional solid porous body to have a substantially continuous open pore network between the grains of superabrasive material having the layer of catalyst material thereon.
4. The method of claim 1, wherein depositing the layer of catalyst material on the grains of superabrasive material comprises depositing a layer comprising at least one of a carbon based material, a carbide, a nitride, cobalt, iron, and nickel on the grains of superabrasive material.
5. The method of claim 1, wherein depositing the layer of catalyst material on grains of superabrasive material comprises depositing two layers of material on the grains of superabrasive material, the two layers of material having differing compositions.
6. The method of claim 5, wherein depositing at least two layers of materials on the grains of superabrasive material comprises depositing a first layer comprising a carbon based material on the grains of superabrasive material and depositing a second layer comprising at least one of cobalt, iron, and nickel on the grains of superabrasive material.
7. The method of claim 1, wherein depositing the layer of catalyst material on the grains of superabrasive material comprises depositing the layer of catalyst material on the grains of superabrasive material in a chemical vapor infiltration process.
8. The method of claim 1, wherein infiltrating pores of the three-dimensional solid porous body with the molten metal alloy comprises infiltrating the grains of superabrasive material and the particles with the molten metal alloy at a pressure of about 500 MPa or less.
9. The method of claim 1, wherein infiltrating pores of the three-dimensional solid porous body with the molten metal alloy at a temperature of about 1200 C. or less comprising infiltrating pores of the three-dimensional solid porous body with the molten metal alloy at a temperature of about 750 C. or less.
10. The method of claim 1, further comprising selecting the molten metal alloy to comprise a metal alloy of at least one of iron, cobalt, and nickel having a melting temperature of 1200 C. or less.
11. The method of claim 1, further comprising selecting the molten metal alloy to comprise a metal alloy of nickel, chromium, titanium, and silicon having a melting temperature of 1200 C. or less.
12. The method of claim 1, further comprising selecting the grains of superabrasive material to comprise at least one of diamond and cubic boron nitride.
13. The method of claim 1, wherein subjecting the three-dimensional solid porous body having the solid metal alloy therein to a high pressure and high temperature process comprises subjecting the solid metal alloy having the grains of superabrasive material and the particles embedded therein to a pressure of at least about 5.0 GPa and a temperature of at least about 1350 C.
14. A method of forming a cutting element comprising a polycrystalline compact for an earth-boring tool, comprising: depositing a layer of catalyst material on grains of superabrasive material to form a three-dimensional solid porous body, the three-dimensional solid porous body comprising the grains of superabrasive material bonded to one another by the catalyst material deposited thereon and having a shape of the polycrystalline compact to be formed; disposing the three-dimensional solid porous body over a substrate; infiltrating pores of the three-dimensional solid porous body with a molten metal alloy at a temperature of about 1200 C. or less and cooling and solidifying the molten metal alloy within the pores of the three-dimensional solid porous body to form a solid metal alloy within the three-dimensional solid porous body and to bond the three-dimensional solid porous body to the substrate, wherein the grains of superabrasive material within the three-dimensional solid porous body are free of inter-granular bonds directly between the grains of superabrasive material; and subjecting the three-dimensional solid porous body having the solid metal alloy therein and the substrate to a high pressure and high temperature process to form inter-granular bonds between the grains of superabrasive material.
15. The method of claim 14, wherein infiltrating pores of the three-dimensional solid porous body with the molten metal alloy comprises infiltrating a portion of the substrate adjacent the three-dimensional solid porous body with the molten metal alloy.
16. The method of claim 14, further comprising: disposing loose grains of superabrasive material between the three-dimensional solid porous body and the substrate; and subjecting the three-dimensional solid porous body and the substrate to the high pressure and high temperature process.
17. The method of claim 14, wherein depositing the layer of catalyst material on the grains of superabrasive material comprises depositing the layer of catalyst material on grains of superabrasive material to form a three-dimensional solid porous body having a cylindrical disc shape
18. A method of forming a cutting element comprising a polycrystalline compact for an earth-boring tool, comprising: disposing a three-dimensional solid porous body over a substrate, the three-dimensional solid porous body comprising grains of superabrasive material bonded to one another by a catalyst material deposited thereon and having a shape of the polycrystalline compact to be formed, the grains of superabrasive material within the three-dimensional solid porous body being free of inter-granular bonds directly between the grains of superabrasive material; infiltrating pores of the three-dimensional solid porous body with a molten metal alloy at a temperature of about 1200 C. or less and cooling and solidifying the molten metal alloy within the pores of the three-dimensional solid porous body to form a solid metal alloy within the three-dimensional solid porous body and to bond the three-dimensional solid porous body to the substrate; and subjecting the three-dimensional solid porous body having the solid metal alloy therein and the substrate to a high pressure and high temperature process to form inter-granular bonds between the grains of superabrasive material.
19. The method of claim 18, wherein infiltrating pores of the three-dimensional solid porous body with the molten metal alloy comprises infiltrating a portion of the substrate adjacent the three-dimensional solid porous body with the molten metal alloy.
20. The method of claim 18, further comprising, prior to subjecting the three-dimensional solid porous body having the solid metal alloy therein and the substrate to the high pressure and high temperature process, removing the solid metal alloy from some of the pores of the three-dimensional solid porous body.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0014] While the specification concludes with claims particularly pointing out and distinctly claiming what are regarded as embodiments of the present invention, various features and advantages of embodiments of the disclosure may be more readily ascertained from the following description of some embodiments of the disclosure when read in conjunction with the accompanying drawings, in which:
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DETAILED DESCRIPTION
[0027] The illustrations presented herein are not actual views of any particular polycrystalline compact, microstructure of polycrystalline material, or earth-boring tool, and are not drawn to scale, but are merely idealized representations which are employed to describe embodiments of the disclosure. Additionally, elements common between figures may retain the same numerical designation.
[0028] As used herein, the term polycrystalline material means and includes any material comprising a plurality of grains (i.e., crystals) of the material that are bonded directly together by inter-granular bonds. The crystal structures of the individual grains of the material may be randomly oriented in space within the polycrystalline material.
[0029] As used herein, the term polycrystalline compact means and includes any polycrystalline material formed by a process that involves heating and compacting a plurality of grains of material to form inter-granular bonds between the grains of material, resulting in the formation of the polycrystalline material.
[0030] As used herein, the term superabrasive material means diamond and/or cubic boron nitride.
[0031] Embodiments of the disclosure include methods of forming polycrystalline compacts.
[0032] Referring to
[0033] As shown in
[0034] Optionally, in some embodiments, additional particles may be included in (e.g., mixed with) the grains 100 of superabrasive material. By way of example and not limitation, additional particles that exhibit a negative thermal expansion coefficient over at least a range of temperatures between room temperature and about 1,000 C. may be selected for inclusion with the grains 100 of superabrasive material. For example, it is known that cubic zirconium tungstate (ZrW.sub.2O.sub.8) exhibits a negative coefficient of thermal expansion over a temperature range extending from room temperature to about 775 C., and particles of zirconium tungstate may be included with the grains 100 of superabrasive material in some embodiments of the disclosure. Such particles may have an average particle size and particle size distribution as described herein in relation to the grains 100 of superabrasive material. As one non-limiting example, the grains 100 of superabrasive material may comprise a plurality of diamond grains having a bi-modal grain size distribution and an average grain size of about five microns (5 m). About five percent by weight (5 wt %) zirconium tungstate particles having an average grain size of about one micron (1 m) may be combined with the diamond grains and subjected to further processing as described below.
[0035] Other types of additional particles that may be included with the grains 100 of superabrasive material include, for example, ceramic particles (e.g., carbides, borides, nitrides, etc.), metallic particles (e.g., particles of iron, cobalt, nickel, their alloys, etc.), non-diamond carbon-based particles (amorphous carbon, graphite, etc.), previously sintered polycrystalline diamond particles, etc.
[0036] The grains 100 of superabrasive material (and any additional particles included therewith) may be provided in a container 102 having a shape corresponding generally to a shape of a polycrystalline compact to be formed, as shown in
[0037] Optionally, in embodiments in which the grains 100 of superabrasive material comprise diamond, the grains 100 of superabrasive material may be heated to a temperature of about 1,000 C. for about five minutes (5 min.) to slightly graphitize surfaces of the grains 100.
[0038] The container 102 with the grains 100 of superabrasive material therein then may be provided within a chemical vapor deposition chamber, and chemical vapors may be allowed or caused to infiltrate the spaces between the grains 100 of superabrasive material, and to deposit material onto the surfaces of the grains 100 of superabrasive material.
[0039] The deposition of the material onto the grains 100 of superabrasive material may result in the formation of a three-dimensional solid porous body 106, shown in
[0040] The material 110 deposited on the surfaces of the grains 100 of superabrasive material may comprise, for example, one or more of a carbon-based material (e.g., diamond or a diamond-like material), a carbide (e.g., silicon carbide, tungsten carbide, etc.) a nitride (e.g., silicon nitride), a metal (e.g., cobalt, iron, nickel, etc.).
[0041] By way of non-limiting example, the material 110 may be deposited on the grains 100 of superabrasive material using a chemical vapor infiltration and deposition process as described in U.S. Pat. No. 5,527,747, issued Jun. 18, 1996, to Lackey, Jr. et al., the disclosure of which is incorporated herein in its entirety by this reference. As disclosed therein, reagent gases may be caused to flow through the volume of the grains 100 of superabrasive material, and energy may be applied to the reagent gases to generate a plasma, from which a material, such as diamond or a diamond-like material, may be deposited on the grains 100 of superabrasive material.
[0042] In some embodiments, the reagent gases may be forced to flow through the grains 100 of superabrasive material within the deposition chamber. For example, referring to
[0043] In the methods of U.S. Pat. No. 5,527,747, diamond is deposited on diamond grains until the volume of diamond grains becomes impermeable. In embodiments of the present disclosure, however, the material 110 may be deposited on the grains 100 of superabrasive material to a thickness sufficient to result in the formation of the three-dimensional solid porous body 106, but without causing the three-dimensional solid porous body 106 to become impermeable, and so as to leave a network of pores within the three-dimensional solid porous body 106. In some embodiments, the three-dimensional solid porous body 106 may comprise a substantially continuous open pore network to allow a molten metal to infiltrate into the pores within the three-dimensional solid porous body 106 as described in further detail below.
[0044] In some embodiments, the material 110 deposited on the grains 100 of superabrasive material may comprise two or more layers having differing compositions, each of which may be individually selected from a carbon based material (e.g., diamond or a diamond-like material), a carbide (e.g., silicon carbide, tungsten carbide, etc.) a nitride (e.g., silicon nitride), and a metal (e.g., cobalt, iron, nickel, etc.). For example, in some embodiments, the material 110 may comprise a first layer including diamond or a diamond-like material, and a second layer including one or more of cobalt, iron, and nickel.
[0045] As one particular non-limiting example, the grains 100 of superabrasive material may comprise a plurality of diamond grains having a bi-modal particle size distribution and an average particle size of about five microns (5 m). About five weight percent (5 wt %) zirconium tungstate particles may be combined with the diamond grains, as described above. The particle mixture may be disposed in a container 102, which may comprise a porous graphite material. The container 102 with the particulate mixture therein may be placed in a column purged by an inert gas (e.g., argon), after which the column may be heated to about 1,200 C. and a silicon carbide organometallic precursor gas, such as methyltrichlorosilane, dimethyldichlorosilane, or triethylsilane, may be caused to pass through the particulate mixture such that a relatively thin coating of silicon carbide (SiC) is deposited onto the surfaces of the diamond grains and the surfaces of the zirconium tungstate particles to form a three-dimensional solid porous body 106, which may be subjected to further processing as described herein.
[0046] Referring again to
[0047] In some embodiments, the infiltration process of action 20 may comprise an infiltration process as described in U.S. Pat. No. 7,879,129, issued Feb. 1, 2011, the disclosure of which is incorporated herein in its entirety by this reference.
[0048] Referring to
[0049] A volume of a solid metal alloy 130 may be provided over the three-dimensional solid porous body 106 within the container 122 as shown in
[0050] The container 122 with the three-dimensional solid porous body 106 and the volume of solid metal alloy 130 therein may be heated in an inert atmosphere to a temperature of about 1200 C. or less, or even below about 750 C. or less in some embodiments, to melt the volume of solid metal alloy 130. The molten volume of solid metal alloy 130 then may be allowed or caused to infiltrate into the pores within the three-dimensional solid porous body 106 in the spaces between the grains 100 of superabrasive material. In some embodiments, the container 122 with the three-dimensional solid porous body 106 and the volume of solid metal alloy 130 therein may be heated in an enclosed chamber, which may be pressurized with an inert gas to assist the infiltration of the molten metal alloy 130 into the pores of the three-dimensional solid porous body 106. By way of example and not limitation, an isostatic or axial (e.g., uniaxial or biaxial) pressure of about 500 MPa or less (e.g., about 200 MPa) may be applied within such an enclosed chamber to assist the infiltration of the molten metal alloy 130 into the pores of the three-dimensional solid porous body 106. In additional embodiments, however, the molten metal alloy 130 may be infiltrated into the pores of the three-dimensional solid porous body 106 at about atmospheric pressure (without any additional applied pressure).
[0051] The molten metal alloy 130 may be allowed to cool within the pores of the three-dimensional solid porous body 106 resulting in the formation of an at least substantially fully dense body comprising the three-dimensional solid porous body 106 of
[0052] In some embodiments, a substrate may be attached to the three-dimensional solid porous body 106 during the infiltration process of action 20 (
[0053] The substrate 140 may comprise a wear-resistant material, such as cemented tungsten carbide. Cemented tungsten carbide includes grains of tungsten carbide that are cemented within a metal alloy, which is often an alloy of one or more of cobalt, iron, and nickel. The metal alloy is often referred to as the binder or matrix metal. The grains of tungsten carbide may have an average grain size of between about one hundred nanometers (100 nm) to about fifteen microns (15 m) or more. More particularly, the grains of tungsten carbide may have an average grain size of between about five hundred nanometers (500 nm) and about ten microns (10 m). Further, the binder metal may comprise between about four percent by weight (4 wt %) and about twenty percent by weight (20 wt %) of the cemented tungsten carbide material. More particularly, the binder metal may comprise between about six percent by weight (6 wt %) and about fifteen percent by weight (15 wt %) of the cemented tungsten carbide material. Further, carbides, nitrides, borides and other hard materials other than tungsten carbide may be used to form the wear-resistant material of the substrate 140 in additional embodiments.
[0054] In the embodiment of
[0055] In some embodiments, it may be desirable to treat a surface of the substrate 140 to improve the strength of the bond between the surface of the substrate 140 and the solid metal alloy 130 having the three-dimensional solid porous body 106 and the grains 100 of superabrasive material embedded therein. For example, in embodiments in which the substrate 140 comprises a cemented tungsten carbide material, it may be desirable to remove at least a portion of the binder metal from between the tungsten carbide grains in a region of the substrate 140 adjacent a surface of the substrate 140 to be bonded to the solid metal alloy 130. For example, referring to
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[0057] Referring again to
[0058] Referring to
[0059] In embodiments in which the grains 100 of superabrasive material have been infiltrated with molten metal alloy 130 in accordance with action 20 of
[0060] Optionally, the methods disclosed in U.S. Patent Application Publication No. 20110073380, published Mar. 31, 2011 and entitled Production of reduced Catalyst PDC Via Gradient Driven Reactivity, which is incorporated herein in its entirety by this reference, may be employed in the HPHT process in order to facilitate mass transport during the sintering process, to enhance the compaction of the particles in the HPHT process, and to enhance the formation of inter-granular bonds between the grains 100 of superabrasive material.
[0061] In embodiments in which material 110 has been deposited on the surfaces of the grains 100 of superabrasive material to form a three-dimensional solid porous body 106 like that shown in
[0062] In some embodiments, a substrate may be included with the grains 100 of superabrasive material in the HPHT process. Such a substrate may be the substrate 140 previously described herein, or it may be another substrate, which may be at least substantially similar to the previously described substrate 140. In other embodiments, however, a substrate may not be included with the grains 100 of superabrasive material in the HPHT process.
[0063] If a substrate may be included with the grains 100 of superabrasive material in the HPHT process, and the grains 100 are disposed in a three-dimensional solid porous body 106, and/or have been infiltrated with a metal alloy 130, it may be desirable to include additional loose grains of superabrasive material over the bonding surface of the additional substrate in the HPHT process to improve the bonding to the additional substrate. For example,
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[0065] The superabrasive polycrystalline material 166 comprises a plurality of inter-bonded grains 100 of superabrasive material, such as diamond or cubic boron nitride. In other words, the superabrasive polycrystalline material 166 may comprise polycrystalline diamond in some embodiments. In other embodiments, the superabrasive polycrystalline material 166 may comprise polycrystalline cubic boron nitride.
[0066] One or more materials may be disposed in interstitial spaces between inter-bonded grains 100 of hard material in at least a portion of the superabrasive polycrystalline material 166 of the polycrystalline compact 162. These one or more materials may be formed from and comprise one or more of the material 110 deposited on the grains 100 of superabrasive material, the metal alloy 130 infiltrated into the grains 100 of superabrasive material, and materials swept into the grains 100 of superabrasive material from the substrate 164.
[0067] Referring again to
[0068] Removing material from the interstitial spaces between the inter-bonded grains of the superabrasive polycrystalline material 166 of the polycrystalline compact 162 may render the superabrasive polycrystalline material 166 relatively more thermally stable and less susceptible to thermal shock, thermal checking, and other forms of thermal degradation.
[0069] In some embodiments, material may be removed from the interstitial spaces between the inter-bonded grains of the superabrasive polycrystalline material 166 in a first leached region 168A of the polycrystalline compact 162, and material may be left within the interstitial spaces between the inter-bonded grains of the superabrasive polycrystalline material 166 in a second un-leached region 168B of the polycrystalline compact 162, as shown in
[0070] With continued reference to
[0071] The various embodiments of the disclosure may provide one or more advantages over previously known methods of forming polycrystalline compacts. For example, it is known that HPHT processes (like those of action 40 in
[0072] The foregoing description is directed to particular embodiments for the purpose of illustration and explanation. It will be apparent, however, to one skilled in the art that many modifications and changes to the embodiments set forth above are possible without departing from the scope of the embodiments disclosed herein as hereinafter claimed, including legal equivalents. It is intended that the following claims be interpreted to embrace all such modifications and changes.