IP Library Granted Patent US 8,613,886
Granted Patent B2
US 8,613,886 · App. 11/476,550 · Granted Dec 24, 2013

Nickel-rich wear resistant alloy and method of making and use thereof

Inventors: Cong Yue Qiao (Menominee, MI); Todd Trudeau (Menominee, MI)
Assignee: L. E. Jones Company
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Quick Facts
Patent No.
US 8,613,886
App. No.
11/476,550
Granted
Dec 24, 2013
Kind
B2
Abstract

A nickel-rich wear resistant alloy comprises in weight % 0.5 to 2.5% C, 0.5 to 2% Si, up to 1% Mn, 20 to 30% Cr, S to 15% Mo, 5 to 15% W, 15 to 30% Fe, balance Ni. The alloy can include further alloying constituents such as up to 1.5% each of Ti, Al, Zr, Hf, Ta, V, Nb, Co, Cu, up to 0.5% B and up to 0.5% Mg plus Y. The alloy preferably has a microstructure containing predominantly eutectic reaction phases, fine intermetallic phases and precipitation carbides. For instance, the microstructure may contain Cr. Ni, W rich intermetallic phases and/or the microstructure may contain uniform lamellar type eutectic solidification structures. The alloy is useful as a valve seat insert for internal combustion engines such as diesel engines. For a valve seat insert containing up to 1.8% C the microstructure preferably is free of primary dendritic carbides. For a valve seat insert alloy containing over 1.8% C the microstructure preferably contains non-dendritic type primary carbides. For a valve seat insert containing up to 1.5% C the microstructure preferably includes solid solution phases encompassed by eutectic reaction products.

Claims (61)

1. A nickel-rich wear resistant alloy comprising in weight %:

0.5 to 1.5% C

0.5 to 1.5% Si

up to 1% Mn

20 to 30% Cr

5 to 15% Mo

5 to 15% W

15 to 30% Fe

balance Ni

the alloy having a microstructure containing uniform lamellar type eutectic solidification structures and the Ni content exceeding the Fe content by at least 5%, and the microstructure containing predominantly eutectic reaction phases, fine intermetallic phases and precipitation carbides.

2. The alloy of claim 1 , further comprising up to 1.5% each of Ti, Al, Zr, Hf, Ta, V, Nb, Co or Cu and/or up to 0.5% each of Mg, B or Y.

3. The alloy of claim 1 , wherein Si is 1.0 to 1.1% and Cr is 20-25%.

4. The alloy of claim 1 , wherein C is 1 to 1.5%, Si is 0.75 to 1.5%, Cr is 22 to 25%, Mo is 7 to 12%, W is 7 to 12%, Fe is 22 to 25% and Ni is 25 to 40%.

5. A nickel-rich wear resistant alloy comprising in weight %:

0.5 to 1.5% C

0.5 to 1.5% Si

up to 1% Mn

20 to 30% Cr

5 to 15% Mo

5 to 15% W

15 to 30% Fe

balance Ni

the alloy having a microstructure containing uniform lamellar type eutectic solidification structures and the Ni content exceeding the Fe content by at least 5%, and the microstructure containing Cr, Ni, W rich intermetallic phases.

6. A nickel-rich wear resistant alloy comprising in weight %:

0.5 to 1.5% C

0.5 to 1.5% Si

up to 1% Mn

20 to 30% Cr

5 to 15% Mo

5 to 15% W

15 to 30% Fe

balance Ni

the alloy having a microstructure containing uniform lamellar type eutectic solidification structures and the Ni content exceeding the Fe content by at least 5%, and the microstructure containing essentially no primary dendritic carbides.

7. A nickel-rich wear resistant alloy comprising in weight %:

0.5 to 1.5% C

0.5 to 1.5% Si

up to 1% Mn

20 to 30% Cr

5 to 15% Mo

5 to 15% W

15 to 30% Fe

balance Ni

the alloy having a microstructure containing uniform lamellar type eutectic solidification structures and the Ni content exceeding the Fe content by at least 5%, and the microstructure containing solid solution phases encompassed by eutectic reaction products.

8. A valve seat insert comprising in weight %:

0.5 to 1.5% C

0.5 to 1.5% Si

up to 1% Mn

20 to 30% Cr

5 to 15% Mo

5 to 15% W

15 to 30% Fe

balance Ni,

the alloy having a microstructure containing uniform lamellar type eutectic solidification structures and the Ni content exceeding the Fe content by at least 5% and the microstructure containing predominantly eutectic reaction phases, fine intermetallic phases and precipitation carbides.

9. The valve seat insert of claim 8 , further comprising up to 1.5% each of Ti, Al, Zr, Hf, Ta, V, Nb, Co or Cu, up to 0.5% B and/or up to 0.5% Mg plus Y.

10. The valve seat insert of claim 8 , wherein Si is 1.0 to 1.1% and Cr is 20-25%.

11. The valve seat insert of claim 8 , wherein the Fe content exceeds the Cr content by at least 0.5%.

12. The valve seat insert of claim 8 , wherein the W content exceeds the Mo content.

13. The valve seat insert of claim 8 , wherein the W content exceeds the Mo content by no more than 2%, the Fe content exceeds the Cr content by no more than 5% and the Ni content exceeds the Fe content by no more than 15%.

14. The valve seat insert of claim 8 , wherein the insert is a cast insert.

15. The valve seat insert of claim 8 , wherein the insert has an as cast hardness of at least about 40 Rockwell C, a compressive yield strength at room temperature of 95 ksi and/or a compressive yield strength at 800° F. of at least 85 ksi.

16. The valve seat insert of claim 8 , wherein the insert exhibits a dimensional stability of less than about 0.5×10 −3 inches after 20 hours at 1200° F.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 22, 2006
From: QIAO, CONG YUE; TRUDEAU, TODD
To: L. E. JONES COMPANY
Reel/Frame 018300/0332 →
Continuity (1)
Related Publication 20080001115A1 · Jan 3, 2008