IP Library Granted Patent US 7,466,799
Granted Patent B2
US 7,466,799 · App. 10/409,854 · Granted Dec 16, 2008

X-ray tube having an internal radiation shield

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Quick Facts
Patent No.
US 7,466,799
App. No.
10/409,854
Granted
Dec 16, 2008
Kind
B2
Abstract

A shielding disk for managing x-ray emission form a stationary anode x-ray tube is disclosed. The stationary anode x-ray tube includes an anode housing and a stainless steel can that together form an evacuated enclosure and respectively contain a stationary anode and a cathode assembly. The shielding disk, comprised of tungsten, is interposed between the anode housing and the can, and is formed with a region, such as a hole, formed through a central portion thereof. During tube operation, electrons pass through the shielding disk hole to impact a target surface on the anode and produce x-rays. Those x-rays that do not pass through a window defined in the anode housing to exit the tube but instead emanate toward the can, are intercepted and absorbed by the shielding disk before entering the can. This results in a reduced need for lead shielding disposed about external surfaces of the x-ray tube.

Claims (42)

1. A stationary anode x-ray tube, comprising: an evacuated enclosure including:

a first segment containing a cathode assembly with an electron source, and the first segment defining an aperture through which electrons can pass; and

a second segment hermetically joined to the first segment, the second segment containing a stationary anode having a target surface that is positioned to receive electrons produced by the electron source; and

a first radiation shield at least partially disposed within the aperture defined by the first segment.

2. A stationary anode x-ray tube as defined in claim 1 , wherein the first radiation shield is positioned so as to prevent the impingement of x-rays on a port defined in an outer housing containing the evacuated enclosure, the port receiving a high voltage cable that electrically connects to the cathode assembly.

3. A stationary anode x-ray tube as defined in claim 1 , wherein the first radiation shield comprises a high Z material for absorbing x-rays that are incident upon it.

4. A stationary anode x-ray tube as defined in claim 1 , wherein the first radiation shield defines an aperture through which the electrons pass from the electron source to the anode.

5. A stationary anode x-ray tube as defined in claim 1 , further comprising a second radiation shield positioned proximate the electron source in the first segment.

6. A stationary anode x-ray tube as defined in claim 1 , wherein the first radiation shield is composed of tungsten.

7. A stationary anode x-ray tube as defined in claim 1 , wherein the first radiation shield is disk-shaped.

8. The stationary anode x-ray tube as defined in claim 1 , wherein the first radiation shield contacts the first and second segments.

9. The stationary anode x-ray tube as defined in claim 1 , further comprising a plate arranged such that the first radiation shield is positioned between the plate and the second segment, the plate defining an opening that is aligned with the passage and the aperture.

10. An x-ray tube, comprising: an evacuated enclosure comprising:

a stainless steel container containing a cathode assembly, the cathode assembly including a filament housed in a cathode head for producing and emitting electrons; and

a copper anode housing hermetically joined to the stainless steel container to define a passage there between the anode housing containing a target surface disposed on a copper substrate, the target surface being positioned to receive the electrons emitted by the filament; and

a first radiation shield disposed in the passage between the stainless steel container and the anode housing, the radiation shield comprising tungsten and defining a region through which the electrons from the filament can pass to the target surface.

11. An x-ray tube as defined in claim 10 , wherein the first radiation shield is disk-shaped, and wherein the region is defined through a central portion of the disk 3 .

12. An x-ray tube as defined in claim 11 , wherein a barrier is interposed between the target surface and at least a portion of the first radiation shield so as to prevent the impingement of back scattered electrons from the target surface on the first radiation shield.

13. An x-ray tube as defined in claim 12 , wherein the barrier comprises copper.

14. An x-ray tube as defined in claim 11 , wherein the first radiation shield IS positioned adjacent an end portion of the copper anode housing so as to prevent the impingement of backscattered electrons from the target surface on the first radiation shield.

15. An x-ray tube as defined in claim 10 , further comprising a second radiation shield positioned in a portion of the cathode assembly to absorb x-rays that pass from the target surface through the passage defined between the copper anode housing and stainless steel container.

16. An x-ray tube as defined in claim 15 , wherein the second radiation shield substantially comprises tungsten.

17. An x-ray tube as defined in claim 16 , wherein the second radiation shield is positioned adjacent the cathode head.

18. An x-ray tube as defined in claim 17 , wherein at least one of the first and second radiation shields reduces the impingement of x-rays on a port defined in an outer housing, the outer housing containing the evacuated enclosure.

19. An x-ray tube as defined in claim 18 , wherein the port receives a high voltage cable for supplying a voltage signal to the cathode assembly.

20. An x-ray tube, comprising: an evacuated enclosure comprising:

a cathode housing containing a cathode assembly, the cathode assembly including a filament housed in a cathode head;

an anode housing hermetically joined to the cathode housing and the anode housing defining an anode housing end portion, the anode housing containing a target surface that is positioned to receive electrons emitted by the filament; and

a first radiation shield disposed immediately adjacent to the anode housing end portion, the first radiation shield defining an opening, wherein the opening and the anode end portion together define a passageway that allows passage of the electrons from the cathode housing to the anode housing; and

a second radiation shield disposed within the cathode housing such that the filament is disposed between the first radiation shield and the second radiation shield.

21. The x-ray tube as defined in claim 20 , wherein the second radiation shield is comprised of a material that includes tungsten.

22. The x-ray tube as defined in claim 20 , wherein the first radiation shield is comprised of a material that includes tungsten.

23. An x-ray tube as defined in claim 20 , wherein the first radiation shield reduces the impingement of x-rays on a port defined in an outer housing, the outer housing containing the evacuated enclosure.

24. An x-ray tube as defined in claim 23 , wherein the port receives a high voltage cable for supplying a voltage signal to the cathode assembly.

25. The x-ray tube as defined in claim 20 , wherein the first radiation shield is comprised of a material that includes copper and tungsten.

26. The x-ray tube as defined in claim 20 , wherein the first radiation shield is comprised of a material that includes nickel, iron and tungsten.

27. The x-ray tube as defined in claim 20 , further comprising a plate arranged such that the first radiation shield is positioned between the plate and the anode housing, the plate defining an opening that is aligned with the passage and the aperture.

28. An x-ray tube, comprising: an evacuated enclosure comprising:

a cathode housing containing a cathode assembly, the cathode assembly including a filament housed in a cathode head and the cathode housing defining an aperture that is relatively smaller than an inside diameter of the cathode housing; and

an anode housing hermetically joined to the cathode housing and the anode housing defining a passage that is aligned with the aperture defined by the cathode housing, the anode housing containing a target surface that is positioned to receive electrons emitted by the filament;

a first radiation shield located proximate both the aperture defined by the cathode housing and the passage defined by the anode housing, the first radiation shield defining an opening that is aligned with the aperture, the opening defined by the first radiation shield being relatively smaller than the aperture;

a second radiation shield disposed within the cathode housing such that the filament is disposed between the first radiation shield and the second radiation shield, wherein the second radiation shield is comprised of a material that includes tungsten.

Assignments (7)
RELEASE OF SECURITY INTEREST Recorded Mar 29, 2024
From: BANK OF AMERICA, N.A.
To: VAREX IMAGING CORPORATION
Reel/Frame 066950/0001 →
SECURITY INTEREST Recorded Oct 1, 2020
From: VAREX IMAGING CORPORATION
To: WELLS FARGO BANK, NATIONAL ASSOCIATION, AS AGENT
Reel/Frame 054240/0123 →
SECURITY INTEREST Recorded Sep 30, 2020
From: VAREX IMAGING CORPORATION
To: BANK OF AMERICA, N.A., AS AGENT
Reel/Frame 053945/0137 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 28, 2017
From: VARIAN MEDICAL SYSTEMS, INC.
To: VAREX IMAGING CORPORATION
Reel/Frame 041602/0309 →
MERGER Recorded Oct 3, 2008
From: VARIAN MEDICAL SYSTEMS TECHNOLOGIES, INC.
To: VARIAN MEDICAL SYSTEMS, INC.
Reel/Frame 021631/0880 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 6, 2003
From: VARIAN MEDICAL SYSTEMS, INC.
To: VARIAN MEDICAL SYSTEMS TECHNOLOGIES, INC.
Reel/Frame 014557/0764 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 9, 2003
From: MILLER, ROBERT STEVEN
To: VARIAN MEDICAL SYSTEMS, INC.
Reel/Frame 013962/0984 →