IP Library Granted Patent US 11,101,048
Granted Patent B2
US 11,101,048 · App. 15/363,060 · Granted Aug 24, 2021

Fully ceramic microencapsulated fuel fabricated with burnable poison as sintering aid

Inventor: Francesco Venneri (Los Alamos, NM)
Assignee: ULTRA SAFE NUCLEAR CORPORATION
G21C3/623G21C3/044G21C3/28G21C3/62G21C3/626G21C21/02G21C3/045Y02E30/30
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Quick Facts
Patent No.
US 11,101,048
App. No.
15/363,060
Granted
Aug 24, 2021
Kind
B2
Abstract

A methodology is disclosed for compaction of a ceramic matrix of certain nuclear fuels incorporating neutron poisons, whereby those poisons aid in reactor control while aiding in fuel fabrication. Neutronic poisons are rare-earth oxides that readily form eutectics suppressing fuel fabrication temperature, of particular importance to the fully ceramic microencapsulated fuel form and fuel forms with volatile species.

Claims (35)

1. A method comprising:

providing a plurality of tristructural-isotropic fuel particles;

mixing the plurality of tristructural-isotropic fuel particles with silicon carbide powder and at least two different rare earth oxide neutronic poisons to form a precursor mixture in which the silicon carbide powder separates at least one of the plurality of tristructural-isotropic fuel particles embedded in the silicon carbide powder from the other tristructural-isotropic fuel particles embedded in the silicon carbide powder; and

compacting the precursor mixture at a predetermined pressure and temperature to form a fuel element in which the silicon carbide powder becomes a silicon carbide matrix having a density substantially equal to the theoretical density of stoichiometric silicon carbide and having pockets of porosity of not more than 4%,

wherein the pockets include the rare earth oxide neutronic poisons,

wherein one of the rare earth oxide neutronic poisons is Eu 2 O 3 , and

wherein the rare earth neutronic poisons are in an amount of up to 6 weight percent.

2. The method according to claim 1 , wherein the rare earth oxide neutronic poisons include rare earth oxides having a large neutron capture cross-section and ability to suppress a sintering temperature of the silicon carbide powder below a critical damage temperature of the tristructural-isotropic fuel particles.

3. The method according to claim 1 , wherein additional rare earth oxide neutronic poisons are selected from the group consisting of Gd 2 O 3 , Er 2 O 3 , and Dy 2 O 3 .

4. The method according to claim 1 , further comprising: mixing additional sintering additives to the precursor mixture of the silicon carbide powder and the rare earth oxide neutronic poisons.

5. The method according to claim 4 , wherein the additional sintering additives include alumina, yttria, or other rare earth oxides, or combinations thereof.

6. The method according to claim 1 , wherein one or more of the rare earth oxide neutronic poisons are oxide sintering additives in the precursor mixture.

7. The method according to claim 1 , wherein the precursor mixture consists essentially of the silicon carbide powder and the rare earth oxide neutronic poisons.

8. The method according to claim 1 , wherein the precursor mixture includes the rare earth oxide neutronic poisons in an amount up to 10 weight percent of a total weight of the precursor mixture.

9. The method according to claim 1 , wherein a combination of the rare earth oxide neutronic poisons and any additional sintering additives is in an amount up to 10 weight percent of a total weight of the precursor mixture.

10. The method according to claim 1 , wherein the predetermined temperature is less than 1900° C.

11. A nuclear fuel comprising:

a fuel element comprising a plurality of tristructural-isotropic fuel particles intermixed in a silicon carbide matrix,

wherein the silicon carbide matrix separates a least one of the plurality of tristructural-isotropic fuel particles embedded in the silicon carbide matrix from the other tristructural-isotropic fuel particles embedded in the silicon carbide matrix,

wherein the silicon carbide matrix has a density substantially equal to the theoretical density of stoichiometric silicon carbide and has pockets of porosity of not more than 4%,

wherein the pockets include at least two different rare earth oxide neutronic poisons,

wherein one of the rare earth rare earth oxide neutronic poisons is Eu 2 O 3 , and

wherein the rare earth neutronic poisons are in an amount of up to 6 weight percent.

12. The nuclear fuel according to claim 11 , wherein the pockets consist essentially of the rare earth oxide neutronic poisons.

13. The nuclear fuel according to claim 11 , wherein the pockets consist essentially of the rare earth oxide neutronic poisons and sintering additives.

14. The nuclear fuel according to claim 11 , wherein additional rare earth oxide neutronic poisons are selected from the group consisting of Gd 2 O 3 , Er 2 O 3 , and Dy 2 O 3 .

15. A nuclear fuel comprising:

a fuel element comprising a plurality of tristructural-isotropic fuel particles intermixed in a silicon carbide matrix,

wherein the silicon carbide matrix separates a least one of the plurality of tristructural-isotropic fuel particles embedded in the silicon carbide matrix from the other tristructural-isotropic fuel particles embedded in the silicon carbide matrix,

wherein the silicon carbide matrix has a density substantially equal to the theoretical density of stoichiometric silicon carbide and has pockets of porosity of not more than 4%,

wherein the pockets include rare earth oxide neutronic poisons, and

wherein the rare earth oxide neutronic poisons include combinations of Gd 2 O 3 and Er 2 O 3 in a range of 1.57 to 2.07 total weight percent.

16. The nuclear fuel according to claim 15 , wherein the pockets consist essentially of the rare earth oxide neutronic poisons.

17. The nuclear fuel according to claim 15 , wherein the pockets consist essentially of the rare earth oxide neutronic poisons and sintering additives.

18. The nuclear fuel according to claim 15 , wherein additional rare earth oxide neutronic poisons further include Dy 2 O 3 .

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 15, 2025
From: ULTRA SAFE NUCLEAR CORPORATION; ULTRA SAFE NUCLEAR CORPORATION - TECHNOLOGIES
To: STANDARD NUCLEAR, INC.
Reel/Frame 069869/0982 →
SECURITY INTEREST Recorded Oct 10, 2024
From: ULTRA SAFE NUCLEAR CORPORATION
To: THE AUSTIN COMPANY
Reel/Frame 068866/0712 →
MERGER Recorded Oct 21, 2020
From: ULTRA SAFE NUCLEAR CORPORATION
To: ULTRA SAFE NUCLEAR CORPORATION
Reel/Frame 054123/0066 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 29, 2016
From: VENNERI, FRANCESCO
To: ULTRA SAFE NUCLEAR CORPORATION
Reel/Frame 040449/0531 →
Continuity (2)
Provisional Application 62314746 · Mar 29, 2016
Related Publication 20170287575A1 · Oct 5, 2017
Cited By (4)
US 12,347,577 US 12,467,831 US 12,480,860 US 12,667,857