IP Library › Granted Patent US 10,287,670
Granted Patent B2
US 10,287,670 · App. 15/953,961 · Granted May 14, 2019

Wear resistant vapor deposited coating, method of coating deposition and applications therefor

Inventors: Vladimir Gorokhovsky (Lafayette, CO); Brad B. Heckerman (Kalispell, MT); Yuhang Cheng (Edina, MN)
Assignee: G & H Technologies, LLC
C23C14/0641C21D6/004C21D6/005C21D6/008C22C14/00C22C19/03C22C38/001C22C38/002C22C38/02C22C38/04C22C38/06C22C38/20C22C38/22C22C38/42C22C38/44C22C38/50C22F1/10C22F1/183C23C8/02C23C8/20C23C8/24C23C8/36C23C14/021C23C14/022C23C14/024C23C14/025C23C14/0605C23C14/067C23C14/0611C23C14/0635C23C14/0676C23C14/0682C23C14/14C23C14/5806C23C14/586C23C14/588C23C14/5826C23C16/0227C23C16/0236C23C16/0272C23C16/0281C23C16/06C23C16/24C23C16/26C23C16/28C23C16/32C23C16/34C23C16/38C23C16/42C23C16/56A61B17/1615A61B2017/1602A61C3/02A61C5/42Y10T428/24975Y10T428/252Y10T428/265Y10T428/30
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Quick Facts
Patent No.
US 10,287,670
App. No.
15/953,961
Granted
May 14, 2019
Kind
B2
Abstract

A low friction top coat over a multilayer metal/ceramic bondcoat provides a conductive substrate, such as a rotary tool, with wear resistance and corrosion resistance. The top coat further provides low friction and anti-stickiness as well as high compressive stress. The high compressive stress provided by the top coat protects against degradation of the tool due to abrasion and torsional and cyclic fatigue. Substrate temperature is strictly controlled during the coating process to preserve the bulk properties of the substrate and the coating. The described coating process is particularly useful when applied to shape memory alloys.

Claims (18)

1. A wear resistant coating for a cutting edge, comprising:

a metal-ceramic coating comprising a plurality of pairs of layers, each pair of layers comprised of a ceramic layer overlaying a metallic layer, the metal-ceramic coating comprising a columnar structure and having a toughness of greater than about 0.05 H 3 /E 2 and a hardness of greater than about 20 gigapascals; and

at least one top coat overlaying the metal-ceramic coating, the at least one top coat comprising an amorphous matrix having a friction coefficient of less than 0.3 and comprising nanocrystals sized from about 1 to about 100 nanometers,

wherein the at least one top coat imposes a compressive stress of from about 0.1 to about 8 gigapascals to the underlaying metal-ceramic coating, and

wherein the plurality of pairs of the ceramic and metallic layers of the metal-ceramic coating comprise a common metal ion component.

2. The coating of claim 1 , wherein the metallic layers of the metal-ceramic coating is selected from the group consisting of titanium, chromium, vanadium, aluminum, molybdenum, niobium, tungsten, hafnium, zirconium, alloys thereof, and combinations thereof.

3. The coating of claim 1 , wherein the ceramic layers of the metal-ceramic coating is selected from the group consisting of nitrides, carbides, oxides, oxycarbides, oxynitrides, borides, carboborides, borocarbonitrides, silicides, borosilicides, and combinations thereof.

4. The coating of claim 1 , wherein the amorphous matrix of the at least one top coat comprises an amorphous diamond-like matrix.

5. The coating of claim 1 , wherein at least one top coat is selected from the group consisting of carbon, silicon, nitrogen, hydrogen, oxygen, transition metals, and combinations thereof.

6. The coating of claim 1 , wherein the metal-ceramic coating has a thickness of between about 0.01 micrometers and about 30 micrometers.

7. The coating of claim 1 , wherein the at least one top coat has a thickness of between about 0.01 micrometers and about 30 micrometers.

8. The coating of claim 1 , wherein the metal-ceramic coating and the at least one top coat form a thickness of between about 0.02 micrometers and about 40 micrometers.

9. The coating of claim 1 , further comprising a transition layer between the metal-ceramic coating and the at least one top coat.

10. The coating of claim 1 , wherein the metal-ceramic coating and the at least one top coat are vapor deposited coatings.

11. A substrate, comprising:

a cutting edge, wherein the cutting edge comprises the wear resistant coating of claim 1 .

12. The substrate of claim 11 , wherein the substrate comprises a shape memory alloy.

13. The substrate of claim 11 , wherein the substrate comprises stainless steel.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 27, 2018
From: HECKERMAN, BRAD; GOROKHOVSKY, VLADIMIR; CHENG, YUHANG
To: G&H TECHNOLOGIES,LLC
Reel/Frame 046992/0991 →
Continuity (5)
Continuation 14839698 · Aug 28, 2015
Continuation 13103871 · May 9, 2011
Division 11804433 · May 17, 2007
Provisional Application 60801142 · May 17, 2006
Related Publication 20180245202A1 · Aug 30, 2018
Cited By (1)
US 12,691,601