IP Library Granted Patent US 12,051,518
Granted Patent B2
US 12,051,518 · App. 18/094,127 · Granted Jul 30, 2024

Target irradiation systems for the production of radioisotopes

Inventors: Thomas G. Onderwater (Peterborough, CA); Mark A. Alboino (Toronto, CA); Benjamin D. Fisher (Lynchburg, VA); Andrew F. Long (Peterborough, CA)
Assignee: BWXT Isotope Technology Group, Inc.
G21G1/02G21C1/303G21C23/00G21G1/001G21G2001/0036G21G1/08G21K5/08
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Quick Facts
Patent No.
US 12,051,518
App. No.
18/094,127
Granted
Jul 30, 2024
Kind
B2
Abstract

A target well of a target delivery assembly for use in an irradiation system operative to allow irradiation of a radioisotope target via a vessel penetration of a fission reactor. The target well includes an outer tube and an inner tube disposed therein so that an annulus is formed therebetween. The target is positioned in the inner tube during irradiation. At least one flow channel extends between a bottom end of the outer tube and a bottom end of the inner tube. An elevation piston is slidably disposed within the inner tube to elevate the target, the elevation piston including a one-way check valve allowing flow in a downward direction and preventing flow in an upward direction.

Claims (23)

1. A target well of a target delivery assembly for use in an irradiation system which is operative to irradiate a radioisotope target via a vessel penetration of a fission reactor, comprising:

the target well including an outer tube and an inner tube disposed therein so that a first annulus is formed therebetween, the target being positioned in the inner tube during irradiation;

at least one flow channel extending between a bottom end of the outer tube and a bottom end of the inner tube to allow flow of a propellant medium between an interior of the outer tube and an interior of the inner tube; and

a movable elevation piston slidably disposed within the inner tube to elevate the target, the elevation piston including a one-way check valve allowing flow in a downward direction and preventing flow in an upward direction.

2. The target well of claim 1 , wherein the inner tube further comprises an upper portion, a lower portion, and a constriction disposed therebetween, the constriction defining an aperture having an inner diameter that is less than an outer diameter of the elevation piston, thereby preventing passage of the elevation piston from the lower portion to the upper portion of the inner tube.

3. The target well of claim 1 , further comprising a central tube disposed within the upper portion of the inner tube so that a second annulus is defined therebetween, the first annulus being concentric with the second annulus.

4. The target well of claim 3 , further comprising at least one flow aperture defined in a bottom end of the central tube adjacent the constriction.

5. The target well of claim 1 , further comprising a force-limiting device located within the inner tube.

6. The target well of claim 1 , further comprising a substantially cylindrical target capsule in which the radioisotope target is disposed.

7. The target well of claim 1 , further comprising:

a hydraulic supply in fluid communication with the annulus of the target delivery assembly so that hydraulic pressure is applied during operation through the at least one flow channel to the radioisotope target.

8. The target well of claim 5 , wherein the force limiting device comprises a shock-absorber element disposed both within and at the bottom of the inner tube.

9. The target well of claim 6 , wherein the target capsule includes a pair of annular side bulges extending radially-outwardly therefrom, the side bulges being adjacent respective ends of the target capsule.

10. A target irradiation system comprising:

a fission reactor having a vessel penetration and a calandria;

a target delivery assembly mounted in the vessel penetration;

the target delivery assembly having a target well, the target well including an outer tube and an inner tube disposed therein so that a first annulus is formed therebetween, a target being positioned in the inner tube during irradiation;

at least one flow channel extending between a bottom end of the outer tube and a bottom end of the inner tube to allow flow of a propellant medium between an interior of the outer tube and an interior of the inner tube; and

a movable elevation piston slidably disposed within the inner tube to elevate the target, the elevation piston including a one-way check valve allowing flow in a downward direction and preventing flow in an upward direction.

11. The target irradiation system of claim 10 , wherein the inner tube further comprises an upper portion, a lower portion, and a constriction disposed therebetween, the constriction defining an aperture having an inner diameter that is less than an outer diameter of the elevation piston, thereby preventing passage of the elevation piston from the lower portion to the upper portion of the inner tube.

12. The target irradiation system of claim 10 , wherein the fission reactor is a heavy-water moderated fission reactor.

13. The target irradiation system of claim 10 , wherein the target delivery assembly is affixed to the vessel penetration so that a portion of the target delivery assembly extends downwardly into the vessel penetration.

14. The target irradiation system of claim 10 , wherein the vessel penetration is at a reactivity management deck of the reactor.

Assignments (2)
SECURITY INTEREST Recorded Nov 10, 2025
From: BWXT ADVANCED TECHNOLOGIES LLC; BWXT ISOTOPE TECHNOLOGY GROUP, INC.; BWXT NUCLEAR ENERGY, INC.
To: WELLS FARGO BANK, NATIONAL ASSOCIATION, AS ADMINISTRATIVE AGENT
Reel/Frame 073531/0358 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 29, 2023
From: ONDERWATER, THOMAS G.; ALBOINO, MARK A.; FISHER, BENJAMIN D.; LONG, ANDREW F.
To: BWXT ISOTOPE TECHNOLOGY GROUP, INC
Reel/Frame 064117/0096 →
Continuity (3)
Division 16548952 · Aug 23, 2019
Provisional Application 62723328 · Aug 27, 2018
Related Publication 20230154632A1 · May 18, 2023