EP2145870A2

Polycrystaline diamond with a surface depleted of catalyzing material

Abstract

The present invention provides a superhard polycrystalline diamond or diamond-like element with greatly improved resistance to thermal degradation without loss of impact strength. Collectively called PCD elements, these elements are formed with a binder-catalyzing material in a high-temperature, high-pressure process. The PCD element has a plurality of partially bonded diamond or diamond-like crystals forming at least one continuous diamond matrix, and the interstices among the diamond crystals forming at least one continuous interstitial matrix containing a catalyzing material. The element has a working surface and a body, where a portion of the interstitial matrix in the body adjacent to the working surface is substantially free of the catalyzing material, and the remaining interstitial matrix contains the catalyzing material. This translates to higher wear resistance in cutting applications, higher heat transfer capacity in heat sink applications, and has advantages in numerous other applications including hollow dies, indentors, tool mandrels, and wear elements.

EP2145870A2, drawing sheet 1
Sheet 1 of 8

Term

Term ended

Projected expiry passed 25 June 2021, 5.2 years ago.

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17 claims: 4 independent, 13 dependent

  1. 1
    A polycrystalline diamond element comprising a body of bonded diamond crystals bonded to a substrate of less hard material, and a working surface on the body, wherein a first volume of the body remote from the working surface contains a catalysing material, a second volume of the body adjacent to the working surface is substantially free of the catalysing material, the catalysing material remaining within the second volume of the body increases with distance from the working surface and adheres to surfaces of the diamond crystals, wherein the second volume extends to a depth of at least about 0.1 mm from the working surface.
  2. 7
    A polycrystalline diamond element comprising a body of bonded diamond crystals bonded to a substrate of less hard material, and a working surface on the body, wherein a first volume of the body remote from the working surface contains a catalysing material, a second volume of the body adjacent to the working surface is substantially free of the catalysing material, wherein the second volume has a substantially higher volume density of the bonded diamond crystals than elsewhere in the body and extends to a depth of at least about 0.1 mm from the working surface.
  3. 11
    A polycrystalline diamond element comprising a body of bonded diamond crystals bonded to a substrate of less hard material, a catalysing material, and an interstitial matrix, a working surface on the body, the interstitial matrix in the body adjacent to the working surface is substantially free of the catalysing material to a depth of at least about 0.1 mm from the working surface, and the remaining interstitial matrix contains the catalysing material, wherein the catalysing material remaining within the interstitial matrix in the body adjacent to the working surface continuously increases with distance from the working surface and adheres to surfaces of the diamond crystals.
  4. 15
    A polycrystalline diamond element comprising a body of bonded diamond crystals bonded to a substrate of less hard material, a catalysing material and an interstitial matrix;a working surface on the body;the interstitial matrix in the body adjacent to the working surface is substantially free of the catalysing material to a depth of at least about 0.1 mm from the working surface, and the remaining interstitial matrix contains the catalysing material, wherein the interstitial matrix in the body adjacent to the working surface has a substantially higher volume density of the bonded diamond crystals than elsewhere in the body.