IP Library Granted Patent US 11,043,308
Granted Patent B2
US 11,043,308 · App. 15/722,167 · Granted Jun 22, 2021

Duplex accident tolerant coating for nuclear fuel rods

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Quick Facts
Patent No.
US 11,043,308
App. No.
15/722,167
Granted
Jun 22, 2021
Kind
B2
Abstract

A method is described for forming duplex layers including an interlayer and a corrosion resistant boundary layer on a nuclear fuel rod cladding tube for use in a water cooled nuclear reactor. The method includes forming, by thermal deposition or physical vapor deposition, on the exterior of a substrate, an inner interlayer with Mo, Ta, W or Nb or other particles, and forming, by thermal deposition or physical vapor deposition, on the interlayer, an outer corrosion resistant layer with particles selected from the group consisting of Cr, a Cr alloy, and combinations thereof. The interlayer prevents eutectic formation between the corrosion resistant layer and the substrate.

Claims (24)

1. A method of forming a corrosion resistant boundary on a substrate of a component for use in a water cooled nuclear reactor, the method comprising:

providing a zirconium alloy substrate;

forming on the zirconium alloy substrate, an interlayer with particles selected from the group consisting of Mo, Ta, W, and Nb; and

forming a corrosion resistant layer on the interlayer with particles selected from the group consisting of Cr, a Cr alloy, and combinations thereof;

wherein the interlayer is formed by a physical vapor deposition process and the corrosion resistant layer is formed by a cold spray thermal deposition process.

2. The method recited in claim 1 wherein Cr alloy of the corrosion resistant layer comprises one of FeCrAl or FeCrAlY.

3. The method recited in claim 1 wherein the cold spray process comprises:

heating a pressurized carrier gas to a temperature between 100° C. and 1200° C.;

adding the particles to the heated carrier gas; and

spraying the carrier gas and entrained particles at a velocity of 800 to 4000 ft./sec. (about 243.84 to 1219.20 meters/sec.).

4. The method recited in claim 3 wherein the carrier gas is selected from the group consisting of nitrogen (N 2 ), hydrogen (H 2 ), argon (Ar), carbon dioxide (CO 2 ), and helium (He) and combinations thereof.

5. The method recited in claim 1 wherein the physical vapor deposition process is selected from the group consisting of cathodic arc vapor deposition, magnetron sputtering deposition, and pulsed laser deposition.

6. The method recited in claim 1 further comprising, following the formation of the interlayer, at least one of grinding, buffing, and polishing to increase the smoothness of the coating.

7. The method recited in claim 1 further comprising, following the formation of the corrosion resistant layer, at least one of grinding, buffing, and polishing to increase the smoothness of the coating.

8. The method recited in claim 1 wherein the particles forming the corrosion resistant layer are pure chromium particles.

9. The method recited in claim 1 wherein the particles forming the corrosion resistant layer are Cr alloy particles.

10. The method recited in claim 1 wherein the particles forming the corrosion resistant layer are selected from the group consisting of FeCrAl and FeCrAlY particles.

11. The method recited in claim 1 wherein the particles forming the interlayer are Mo particles.

12. The method of claim 1 , wherein the thickness of the interlayer is between 100 and 300 microns and the thickness of the corrosion resistant layer is between 100 and 300 microns.

13. A method of forming a corrosion resistant boundary on a substrate of a component for use in a water cooled nuclear reactor, the method comprising:

providing a zirconium alloy substrate;

forming on the zirconium alloy substrate, an interlayer with particles selected from the group consisting of Mo, Ta, W, and Nb; and

forming a corrosion resistant layer on the interlayer with particles selected from the group consisting of Cr, a Cr alloy, and combinations thereof;

wherein the interlayer is formed by a cold spray thermal deposition process and the corrosion resistant layer is formed by physical vapor deposition.

Assignments (9)
RELEASE OF SECURITY INTEREST IN PATENTS Recorded Jan 30, 2024
From: CREDIT SUISSE AG, CAYMAN ISLANDS, AS COLLATERAL AGENT
To: WESTINGHOUSE ELECTRIC COMPANY LLC; FAUSKE AND ASSOCIATES LLC
Reel/Frame 066380/0392 →
SECURITY INTEREST Recorded Jan 26, 2024
From: WESTINGHOUSE ELECTRIC COMPANY LLC; BHI ENERGY I SPECIALTY SERVICES LLC; STONE & WEBSTER, L.L.C. (FORMERLY STONE & WEBSTER, INC.)
To: DEUTSCHE BANK AG NEW YORK BRANCH, AS COLLATERAL AGENT
Reel/Frame 066373/0604 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 1, 2020
From: XU, PENG; LAHODA, EDWARD J.; OELRICH, ROBERT
To: WESTINGHOUSE ELECTRIC COMPANY LLC
Reel/Frame 052288/0798 →
RELEASE OF SECURITY INTEREST IN PATENTS Recorded Aug 1, 2019
From: GOLDMAN SACHS BANK USA, AS COLLATERAL AGENT
To: WESTINGHOUSE ELECTRIC COMPANY LLC; FAUSKE AND ASSOCIATES LLC
Reel/Frame 049937/0032 →
SECURITY INTEREST Recorded Aug 1, 2018
From: WESTINGHOUSE ELECTRIC COMPANY LLC; FAUSKE AND ASSOCIATES LLC
To: CREDIT SUISSE AG, CAYMAN ISLANDS BRANCH, AS COLLATERAL AGENT
Reel/Frame 046708/0222 →
SECURITY INTEREST Recorded Aug 1, 2018
From: WESTINGHOUSE ELECTRIC COMPANY LLC; FAUSKE AND ASSOCIATES LLC
To: GOLDMAN SACHS BANK USA, AS COLLATERAL AGENT
Reel/Frame 046708/0332 →
SECURITY INTEREST Recorded Aug 1, 2018
From: WESTINGHOUSE ELECTRIC COMPANY LLC; FAUSKE AND ASSOCIATES LLC
To: BANK OF MONTREAL, AS ADMINISTRATIVE AGENT
Reel/Frame 046708/0639 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 7, 2017
From: SRIDHARAN, KUMAR; MAIER, BENJAMIN; JOHNSON, GREG
To: WISCONSIN ALUMNI RESEARCH FOUNDATION
Reel/Frame 044055/0176 →
CONFIRMATORY LICENSE Recorded Nov 7, 2017
From: WESTINGHOUSE ELECTRIC COMPANY LLC
To: UNITED STATES DEPARTMENT OF ENERGY
Reel/Frame 044056/0020 →