IP Library Granted Patent US 9,312,109
Granted Patent B2
US 9,312,109 · App. 13/749,771 · Granted Apr 12, 2016

High pressure ion chamber enclosure support mount

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Quick Facts
Patent No.
US 9,312,109
App. No.
13/749,771
Granted
Apr 12, 2016
Kind
B2
Abstract

A radiation detection assembly includes an ionization chamber for detecting radiation. An exterior enclosure houses the ionization chamber within an interior volume. A pair of support structures support the ionization chamber with respect to the exterior enclosure. The support structures are disposed opposite each other at a surface of the ionization chamber such that the ionization chamber is symmetric with respect to an axis extending between the support structures. A method of supporting the radiation detection assembly is also provided.

Claims (29)

1. A radiation detection assembly for detecting radiation in a local area atmosphere, the assembly including:

a spherical ionization chamber for receiving the radiation from the local area atmosphere and detecting the radiation, the ionization chamber having an outer surface;

an exterior enclosure housing the ionization chamber within an interior volume, with the interior volume being substantially hollow and bounding space, with no material contacting the outer surface of the ionization chamber and blocking the outer surface of the ionization chamber from the radiation at the interior volume; and

a pair of support structures supporting the ionization chamber with respect to the exterior enclosure, the support structures being disposed diametrically opposite each other at a surface of the ionization chamber such that the ionization chamber is symmetric with respect to an axis extending between the support structures through the ionization chamber.

2. The radiation detection assembly of claim 1 , wherein the exterior enclosure includes a first enclosure portion and a second enclosure portion.

3. The radiation detection assembly of claim 2 , wherein the pair of support structures includes a first support structure and a second support structure.

4. The radiation detection assembly of claim 3 , wherein the first enclosure portion includes a retaining structure for engaging the first support structure and limiting movement of the ionization chamber with respect to the first enclosure portion.

5. The radiation detection assembly of claim 4 , wherein the first support structure includes a shoulder, the first support structure being received within the retaining structure such that an end of the retaining structure engages the shoulder.

6. The radiation detection assembly of claim 3 , wherein the first support structure includes a substantially hollow internal chamber that is sized and shaped to receive a portion of the ionization chamber.

7. The radiation detection assembly of claim 3 , wherein the first support structure is attached to the ionization chamber.

8. The radiation detection assembly of claim 3 , wherein the second enclosure portion includes a base portion for engaging the second support structure and limiting movement of the ionization chamber with respect to the second enclosure portion.

9. The radiation detection assembly of claim 8 , wherein the second support structure includes a circular shape with a hollow center, the second support structure being sized to receive a portion of the ionization chamber within the hollow center.

10. The radiation detection assembly of claim 9 , wherein the second support structure includes an elastomeric material such that movement between the ionization chamber and the second support structure is limited.

11. A radiation detection assembly for detecting radiation in a local area atmosphere, the assembly including:

a spherical ionization chamber for receiving the radiation from the local area atmosphere and detecting the radiation, the ionization chamber having an outer surface;

an exterior enclosure housing the ionization chamber within an interior volume, with the interior volume being substantially hollow and bounding space, with no material contacting the outer surface of the ionization chamber and blocking the outer surface of the ionization chamber from the radiation at the interior volume; and

a pair of support structures supporting the ionization chamber a distance apart from the exterior enclosure, the support structures being disposed diametrically opposite each other at a surface of the ionization chamber such that the ionization chamber is symmetric with respect to an axis extending between the support structures through the ionization chamber, the ionization chamber being non-contacted along the surface extending between the opposing support structures.

12. The radiation detection assembly of claim 11 , wherein the exterior enclosure includes a first enclosure portion and a second enclosure portion.

13. The radiation detection assembly of claim 12 , wherein the pair of support structures includes a first support structure and a second support structure.

14. The radiation detection assembly of claim 13 , wherein the first support structure and the second support structure each include an elastomeric material.

15. The radiation detection assembly of claim 14 , wherein the first support structure and the second support structure each contact the ionization chamber such that movement between the ionization chamber and the support structures is limited.

16. The radiation detection assembly of claim 15 , wherein the first support structure and second support structure provide a compressive force to the ionization chamber.

17. A method of supporting a spherical ionization chamber in a radiation detection assembly that is for detecting radiation in a local area atmosphere, with the chamber being configured to receive the radiation from the local area atmosphere and detect the radiation and the ionization chamber having an outer surface, the method including:

providing an exterior enclosure having an interior volume, with the interior volume being substantially hollow and bounding space;

positioning the spherical ionization chamber within the interior volume with no material contacting the outer surface of the ionization chamber and blocking the outer surface of the ionization chamber from the radiation at the interior volume; and

supporting the ionization chamber with respect to the exterior enclosure with a pair of support structures disposed diametrically opposite each other at a surface of the ionization chamber such that the ionization chamber is symmetric with respect to an axis extending between the support structures through the ionization chamber.

18. The method of claim 17 , further including the step of compressing opposing sides of the ionization chamber with the support structures.

19. The method of claim 18 , further including the step of preventing movement of the ionization chamber with respect to the exterior enclosure.

20. The method of claim 19 , wherein the support structures include an elastomeric material.

Assignments (4)
CHANGE OF NAME Recorded Dec 12, 2025
From: BAKER HUGHES, A GE COMPANY, LLC
To: BAKER HUGHES HOLDINGS LLC
Reel/Frame 073948/0594 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 26, 2020
From: GENERAL ELECTRIC COMPANY
To: BAKER HUGHES, A GE COMPANY, LLC
Reel/Frame 051698/0510 →
CORRECTIVE ASSIGNMENT TO CORRECT THE TO CORRECT ASSIGNOR'S NAMES PREVIOUSLY RECORDED ON REEL 029691 FRAME 0299. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT OF ASSIGNNOR'S INTEREST. Recorded Feb 5, 2014
From: BAUS, EDWARD JOSEPH; CONSTANT, JOSEPH PAUL; LAMBACH, KENNETH KEITH
To: GENERAL ELECTRIC COMPANY
Reel/Frame 032165/0902 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 25, 2013
From: BAUS, EDWARD JOSEPH; MCKINNY, KEVIN SCOTT
To: GENERAL ELECTRIC COMPANY
Reel/Frame 029691/0299 →