IP Library Granted Patent US 7,517,375
Granted Patent B2
US 7,517,375 · App. 11/325,292 · Granted Apr 14, 2009

Wear-resistant boride composites with high percentage of reinforcement phase

Assignee: Iowa State University Research Foundation, Inc.
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Quick Facts
Patent No.
US 7,517,375
App. No.
11/325,292
Granted
Apr 14, 2009
Kind
B2
Abstract

A highly wear resistant sintered, hot pressed, or otherwise compacted ceramic composite material is described, consisting of two discrete phases of the form Al x Mg y B 14 where x and y ≦1 or like hard, orthorhombic compounds, and TiB 2 or like Group IVB transition metal di-borides, and with an unexpectedly high content of transition metal di-boride in the range from 40 to 90 percent (28 to 85 volume percent).

Claims (15)

1. A wear-resistant ceramic composite comprising a sintered, hot pressed, or otherwise compacted boride composite consisting of two discrete phases, wherein the first phase is an orthorhombic compound of the form Al x Mg y B 14 , where x and y ≦1 and Al and/or Mg may be replaced by elements selected from the group consisting of Aluminum, Magnesium, Lithium, Gadolinium, Silver, Sodium, Thulium, Erbium, Yttrium, Holmium, Scandium and Chromium, each of which are known to form a similar chemical structure as AlMgB 14 , and the second phase is TiB 2 or other Group IVB transition metal diborides, and where the weight percentage of transition metal diboride is within the range of from about 40 to about 90 percent.

2. The ceramic of claim 1 comprising from about 50% to 70% by weight of the di-boride phase.

3. The ceramic of claim 1 wherein the transition metal di-boride is selected from the group of Titanium Boride, Zirconium Boride, and Hafnium Boride.

4. The ceramic of claim 1 wherein the grain size is less than 1 micron.

5. The ceramic of claim 1 wherein a metallic binder phase is selected from the group consisting of Cobalt, Magnesium, Nickel and Iron or combinations thereof is used to facilitate densification and improve fracture toughness of the composite.

6. A substrate coated with the wear-resistant ceramic of claim 1 .

7. A substrate coated with the wear-resistant ceramic of claim 2 .

8. A substrate coated with the wear-resistant ceramic of claim 3 .

9. A substrate coated with the wear-resistant ceramic of claim 4 .

10. A substrate coated with the wear-resistant ceramic of claim 5 .

11. An abrasive composite covered with small pieces of the ceramic of claim 1 adhered thereto.

12. An abrasive composite covered with small pieces of the ceramic of claim 2 adhered thereto.

13. An abrasive composite covered with small pieces of the ceramic of claim 3 adhered thereto.

14. An abrasive composite covered with small pieces of the ceramic of claim 4 adhered thereto.

15. An abrasive composite covered with small pieces of the ceramic of claim 5 adhered thereto.

Assignments (2)
CONFIRMATORY LICENSE Recorded Aug 27, 2009
From: IOWA STATE UNIVERSITY RESEARCH FOUNDATION
To: UNITED STATES DEPARTMENT OF ENERGY
Reel/Frame 023152/0609 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 27, 2006
From: COOK, BRUCE ALAN; HARRINGA, JOEL LEE; RUSSELL, ALAN MARK; PETERS, JUSTIN S.; AHMED, ATIQ
To: IOWA STATE UNIVERSITY RESEARCH FOUNDATION, INC.
Reel/Frame 017220/0336 →
Continuity (1)
Related Publication 20070151167A1 · Jul 5, 2007