US2013344309A1PendingUtilityA1

Superhard structure and method of making same

Assignee: ADIA MOOSA MAHOMEDPriority: Dec 31, 2010Filed: Dec 20, 2011Published: Dec 26, 2013
Est. expiryDec 31, 2030(~4.4 yrs left)· nominal 20-yr term from priority
C22C 26/00C30B 29/04B22F 7/062Y10T428/24942B24D 18/0009C01B 32/28C01B 32/25B01J 3/062C04B 35/52C04B 35/5831C30B 29/38C22C 2026/007E21B 10/567
48
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Claims

Abstract

A superhard structure comprises a body of polycrystalline superhard material comprising a first region and a second region, the second region being adjacent an exposed surface of the superhard structure, the second region comprising a diamond material or cubic boron nitride, the density of the second region being greater than 3.4×103 kilograms per cubic metre when the second region comprises diamond material. The material(s) forming the first and second regions have a difference in coefficient of thermal expansion, the first and second regions being arranged such that this difference induces compression in the second region adjacent the exposed surface. The fir further region has the highest coefficient of thermal expansion of the polycrystalline body and is separated from a peripheral free surface of the body of polycrystalline superhard material by the second region or one or more further regions formed of a material or materials of a lower coefficient of thermal expansion. The regions comprise a plurality of grains of polycrystalline superhard material. There is also disclosed a method of making such a material.

Claims

exact text as granted — not AI-modified
1 . A superhard structure comprising:
 a body of polycrystalline superhard material comprising:   a first region; and   a second region, the second region being adjacent an exposed surface of the superhard structure, the second region comprising a diamond material or cubic boron nitride, the density of the second region being greater than 3.4×10 3  kilograms per cubic metre when the second region comprises diamond material; and   wherein the material or materials forming the first and second regions have a difference in coefficient of thermal expansion, the first and second regions being arranged such that the difference between the coefficients of thermal expansion induces compression in the second region adjacent the exposed surface; and wherein the first region or a further region has the highest coefficient of thermal expansion of the polycrystalline body and is separated from a peripheral free surface of the body of polycrystalline superhard material by the second region or one or more further regions formed of a material or materials of a lower coefficient of thermal expansion, wherein the regions comprise a plurality of grains of polycrystalline superhard material.   
     
     
         2 - 3 . (canceled) 
     
     
         4 . A superhard structure according to  claim 1 , wherein the body of polycrystalline superhard material comprises polycrystalline diamond material. 
     
     
         5 . A superhard structure according to  claim 1 , further comprising a substrate bonded to a face of the body of polycrystalline material along an interface. 
     
     
         6 . (canceled) 
     
     
         7 . A superhard structure according to claim  3 , further comprising a third region, a fourth region, a fifth region and a sixth region, the first to sixth regions being axisymmetric, the second to sixth regions being adjacent the first region and each second to sixth region having a lower coefficient of thermal expansion than the first region; wherein:
 a) the first region is positioned between the second region and the substrate;   b) the third region being adjacent to the first region and at the interface of the substrate and the body of polycrystalline material, the third region being located at and forming a portion of the peripheral free surface of the body of polycrystalline material and between the first region and the substrate;   c) the fourth region being adjacent to the third region and situated at the peripheral free surface of the polycrystalline superhard material;   d) the fifth region being adjacent to the fourth region and the second region and separating the second region from the fourth region;   e) the sixth region being adjacent to the first region and separating the first region from the substrate.   
     
     
         8 . (canceled) 
     
     
         9 . A superhard structure according to  claim 7 , wherein the sixth region is formed of a material having the highest coefficient of thermal expansion in the superhard structure. 
     
     
         10 . (canceled) 
     
     
         11 . A superhard structure according to  claim 7 , wherein the first and sixth regions are formed of the same material and have the highest coefficient of thermal expansion, the material from which the first and sixth regions are formed having a higher coefficient of thermal expansion than the material or materials from which the second, third, fourth, and fifth regions are formed. 
     
     
         12 . (canceled) 
     
     
         13 . A superhard structure according to  claim 5 , wherein the first region is formed of a material having the highest coefficient of thermal expansion of the materials in the superhard structure, the first region being situated substantially symmetrically around the central axis of the superhard structure at the interface of the body polycrystalline material and the substrate and separated from the free surfaces of the superhard material by the second region, the second region being formed of a material having the lowest coefficient of thermal expansion in the superhard structure. 
     
     
         14 . A superhard structure according to  claim 13 , wherein the first region is subdivided into more than one separate volume, all of the volumes being separated from the peripheral free surface of the superhard structure by at least one material of lower coefficient of thermal expansion. 
     
     
         15 . A superhard structure according to  claim 14  wherein one or more of the separate volumes are formed of a material having the highest coefficient of thermal expansion in the superhard structure and are toroidal. 
     
     
         16 . A superhard structure according to  claim 1 , further comprising a third volume between the first and second regions, the third volume being formed of a material having a coefficient of thermal expansion different from that of the material from which the second region is formed, wherein the third volume is formed from a material having a coefficient of thermal expansion intermediate that of the material forming the second region and the region(s) haying the highest coefficient of expansion material in the superhard structure. 
     
     
         17 . (canceled) 
     
     
         18 . A superhard structure according to  claim 16 , wherein one or more of the toroidal volumes formed of the material of highest coefficient of thermal expansion are segmented having one or more discontinuities. 
     
     
         19 - 21 . (canceled) 
     
     
         22 . A superhard structure according to  claim 1 , wherein the body of polycrystalline material is polycrystalline diamond material, and the region formed of the material having the highest coefficient of thermal expansion is formed from a polycrystalline diamond material having the highest metal content relative to the polycrystalline diamond material(s) in the other regions. 
     
     
         23 - 24 . (canceled) 
     
     
         25 . A superhard structure according to  claim 1 , wherein the body of polycrystalline material comprises a metal component, the metal component being an alloy having a coefficient of thermal expansion of less than about 4×10 −6  per degree Centigrade. 
     
     
         26 - 42 . (canceled) 
     
     
         43 . A method for making a polycrystalline superhard structure comprising:
 a) forming a first region of polycrystalline material;   b) forming a second region of polycrystalline material adjacent the first region and as an exposed surface, the second region comprising polycrystalline diamond or cubic boron nitride; wherein the material(s) forming the first and second regions have one or more differences in physical properties;   c) subjecting the first and second regions to a pressure greater than 4 GPa and a temperature greater than 1200° C. for a predetermined time; and   d) reducing the pressure and temperature to ambient conditions such that the one or more differences between the physical properties induces compression in the second region adjacent the exposed surface; wherein the first region or a further region has the highest coefficient of thermal expansion of the polycrystalline body and is separated from a peripheral free surface of the body of polycrystalline superhard material by the second region or one or more further regions formed of a material or materials of a lower coefficient of thermal expansion, wherein the regions comprise a plurality of grains of polycrystalline superhard material.   
     
     
         44 . A method as claimed in  claim 43 , wherein the one or more differences in physical properties is a difference in the coefficient of thermal expansion and/or a difference in the modulus of elasticity of the material(s) forming the first and second regions. 
     
     
         45 . A method according to  claim 43 , further comprising;
 prior to the steps of subjecting the first and second regions to a pressure and temperature, placing the first region, the second region and a substrate into a container; and wherein the step of subjecting the first and second regions to a pressure and temperature comprises subjecting the container containing the first and second region and the substrate to said pressure and temperature.   
     
     
         46 - 47 . (canceled) 
     
     
         48 . A method according to  claim 45 , further comprising forming a third region, a fourth region, a fifth region and a sixth region, the first to sixth regions being axisymmetric, the second to sixth regions being adjacent the first region and each second to sixth region having a lower coefficient of thermal expansion than the first region. 
     
     
         49 . A method according to  claim 48 , comprising:
 a) positioning the first region between the second region and the substrate;   b) positioning the third region adjacent the first region and at the interface of the substrate and the body of polycrystalline material, the third region being located at and forming a portion of the peripheral free surface of the body of polycrystalline material and between the first region and the substrate;   c) positioning the fourth region adjacent to the third region and situated at the peripheral free surface of the polycrystalline superhard material;   d) positioning the fifth region adjacent to the fourth region and the second region and separating the second region from the fourth region; and   e) positioning the sixth region adjacent to the first region and separating the first region from the substrate.   
     
     
         50 . A drill bit or a cutter or a component therefor comprising the superhard structure of  claim 1 . 
     
     
         51 - 53 . (canceled) 
     
     
         54 . A superhard structure according to  claim 1 , wherein a portion or the whole of the free surface of the body of polycrystalline material comprises a layer in which metal content has been removed either in whole or in part.

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