Cutting tool and method for producing same

US9403215B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-9403215-B2
Application numberUS-201214111289-A
CountryUS
Kind codeB2
Filing dateApr 10, 2012
Priority dateApr 11, 2011
Publication dateAug 2, 2016
Grant dateAug 2, 2016

How to read this patent

A practical reading order for non-experts. Skip the full description unless you need deep technical detail.

  1. Title

    What the patent document calls the invention.

  2. Abstract

    A short plain-language summary of the technical disclosure.

  3. Assignees and inventors

    Who owns or filed the patent and who is credited as inventor.

  4. Key dates

    Filing, priority, publication, and grant dates set the timeline.

  5. First independent claim

    The legal scope of protection — read this for what is actually claimed.

  6. CPC / IPC classifications

    Technology tags used to group this patent with similar filings.

  7. Citations and related patents

    Prior art links and similar publications in this corpus.

Abstract

Official abstract text for this publication.

The present invention provides a cutting tool that achieves cutting with high precision. The cutting tool of the present invention includes a cutting edge composed of a polycrystalline body including high-pressure-phase hard grains that contain one or more elements selected from the group consisting of boron, carbon, and nitrogen, the polycrystalline body being formed by subjecting a non-diamond carbon material and/or boron nitride, serving as a starting material, to direct conversion sintering under ultra-high pressure and high temperature without adding a sintering aid or a catalyst, in which letting the radius of curvature of the nose of the cutting edge of the cutting tool be R 1 , the sintered grains constituting the polycrystalline body have an average grain size of 1.2×R 1 or less and a maximum grain size of 2×R 1 or less.

First claim

Opening claim text (preview).

The invention claimed is: 1. A cutting tool comprising: a cutting edge composed of a polycrystalline body including high-pressure-phase hard grains that contain one or more elements selected from the group consisting of boron, carbon, and nitrogen, the polycrystalline body being formed by subjecting a non-diamond carbon material and/or boron nitride, serving as a starting material, to direct conversion sintering under ultra-high pressure and high temperature without adding a sintering aid or a catalyst, wherein letting the radius of curvature of the nose of the cutting edge of the cutting tool be R 1 , the sintered grains constituting the polycrystalline body have an average grain size of 1.2×R 1 or less and a maximum grain size of 2×R 1 or less, the radius of curvature R 1 of the nose of the cutting edge of the cutting tool is 50 nm or less, and the sintered grains constituting the polycrystalline body have an average grain size of 60 nm or less. 2. The cutting tool according to claim 1 , wherein letting the radius of curvature of a ridge between a rake face and a flank face of the cutting tool be R 2 , the sintered grains constituting the polycrystalline body have an average grain size of 1.2×R 2 or less and a maximum grain size of 2×R 2 or less. 3. The cutting tool according to claim 1 , wherein letting the radius of curvature of a ridge between two flank faces of the cutting tool be R 3 , the sintered grains constituting the polycrystalline body have an average grain size of 1.2×R 3 or less and a maximum grain size of 2×R 3 or less. 4. The cutting tool according to claim 1 , wherein the sintered grains constituting the polycrystalline body have a maximum grain size of 100 nm or less. 5. The cutting tool according to claim 2 , wherein the radius of curvature R 2 of the ridge between the rake face and the flank face of the cutting tool is 50 nm or less, and the sintered grains constituting the polycrystalline body have an average grain size of 60 nm or less and a maximum grain size of 100 nm or less. 6. The cutting tool according to claim 3 , wherein the radius of curvature R 3 of the ridge between the two flank faces of the cutting tool is 50 nm or less, and the sintered grains constituting the polycrystalline body have an average grain size of 60 nm or less and a maximum grain size of 100 nm or less. 7. The cutting tool according to claim 1 , wherein the cutting edge of the cutting tool is a face formed by a focused ion beam, and the flank face includes a flank face A and a flank face B, the flank face A being closer to the rake face, and the flank face B being adjacent to the flank face A and farther from the rake face. 8. The cutting tool according to claim 7 , wherein a length from a boundary between the flank face A and the rake face to a boundary between the flank face A and the flank face B is 3 μm or less. 9. The cutting tool according to claim 7 , wherein the cutting tool is obtained by machining the flank face B with a focused ion beam directed from the rake face side to the flank side and then machining the flank face A with a focused ion beam directed from the flank side to the rake face side. 10. The cutting tool according to claim 1 , wherein the polycrystalline body has electrical conductivity. 11. The cutting tool according to claim 1 , wherein letting the radius of curvature of the nose of the cutting tool be R 1 , letting the radius of curvature of a ridge between a rake face and a flank face be R 2 , and letting the radius of curvature of a ridge between two flank faces of the cutting tool be R 3 , the average grain size of the polycrystalline body satisfies 0.01×R 1 or more, 0.01×R 2 or more, and 0.01×R 3 or more. 12. The cutting tool according to claim 1 , wherein the polycrystalline body is composed of polycrystalline diamond consisting substantially of diamond alone, the polycrystalline diamond being formed by subjecting a non-diamond carbon material, serving as a starting material, to direct conversion sintering into diamond under ultra-high pressure and high temperature without adding a sintering aid or a catalyst. 13. The cutting tool according to claim 1 , wherein the polycrystalline body is composed of polycrystalline boron nitride consisting substantially of high-pressure-phase boron nitride alone, the polycrystalline boron nitride being formed by subjecting low-pressure-phase boron nitride, serving as a starting material, to direct conversion sintering into high-pressure-phase boron nitride under ultra-high pressure and high temperature without adding a sintering aid or a catalyst, and wherein the high-pressure-phase boron nitride is cubic boron nitride and/or wurtzite boron nitride. 14. The cutting tool according to claim 1 , wherein the cutting tool is a V-shaped tool, a fly cutter, or a micro-grooving tool.

Assignees

Inventors

Classifications

  • B23B27/141Primary

    Specially shaped plate-like cutting inserts, i.e. length greater or equal to width, width greater than or equal to thickness (with specially shaped plate-like exchangeable cutting inserts, e.g. chip-breaking groove, B23B27/1603; with removable plate-like milling cutting inserts of special shape B23C5/202) · CPC title

  • comprising tool of specific chemical composition · CPC title

  • comprising cutting edge bonded to tool shank · CPC title

  • Grain boundary phases intentionally being absent · CPC title

  • Materials characterised by the absence of phases other than the main phase, i.e. single phase materials · CPC title

Patent family

Related publications grouped by family.

External sources

Frequently asked questions

Answers are generated from the same data shown on this page.

What does patent US9403215B2 cover?
The present invention provides a cutting tool that achieves cutting with high precision. The cutting tool of the present invention includes a cutting edge composed of a polycrystalline body including high-pressure-phase hard grains that contain one or more elements selected from the group consisting of boron, carbon, and nitrogen, the polycrystalline body being formed by subjecting a non-diamon…
Who is the assignee on this patent?
Tatsumi Natsuo, Yamamoto Katsuko, Sumiya Hitoshi, and 1 more
What technology area does this patent fall under?
Primary CPC classification B23B27/141. Mapped technology areas include Operations & Transport.
When was this patent published?
Publication date Tue Aug 02 2016 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).