IP Library Granted Patent US 11,510,306
Granted Patent B2
US 11,510,306 · App. 17/111,764 · Granted Nov 22, 2022

Systems and methods for improved x-ray tube life

Inventor: Guoyun Ru (Danbury, CT)
Assignee: Hologic, Inc.
H05G1/02H01J35/066H05G1/58
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Quick Facts
Patent No.
US 11,510,306
App. No.
17/111,764
Granted
Nov 22, 2022
Kind
B2
Abstract

An x-ray tube having at least one focusing cup and an anode. The x-ray tube may have a first filament positioned in a first location between the focusing cup and the anode, the first filament having a first size, and a second filament positioned in a second location between the focusing cup and anode, the second filament having a second size that is substantially the same as the first size. The x-ray tube may also include a switching mechanism configured to engage the second filament upon failure of the first filament.

Claims (49)

1. An x-ray tube comprising:

a focusing cup;

an anode;

a first filament positioned in a first location between the focusing cup and the anode, the first filament having a first size;

a second filament positioned in a second location between the focusing cup and anode, the second filament having a second size that is substantially the same as the first size;

a switching mechanism configured to engage the second filament upon failure of the first filament; and

a first electrode and a second electrode positioned between the focusing cup and the anode, wherein the first electrode is positioned opposite an electron beam path from the second electrode, wherein the first electrode and the second electrode are configured to:

when a first control signal is applied across the first and second electrode, generate an electric field that moves a first electron beam generated from the first filament in a first direction, and

when a second control signal is applied across the first and second electrode, generate an electric field that moves a second electron beam generated from the second filament in a second direction.

2. The x-ray tube of claim 1 , wherein:

the first filament is configured to generate the first electron beam having a first focal spot on the anode;

the second filament is configured to generate the second electron beam; and

the first control signal is configured to move the second electron beam such that the second electron beam has a second focal spot on the anode that is substantially the same as the first focal spot.

3. The x-ray tube of claim 2 , further comprising a third electrode and a fourth electrode, wherein the third electrode and the fourth electrode are configured to, when a second control signal is applied across the third and the fourth electrode, generate an electric field that moves the electron beam in a second direction.

4. The x-ray tube of claim 1 , wherein the switching mechanism is a mechanical switch.

5. The x-ray tube of claim 1 , wherein the switching mechanism includes at least one transistor or relay configured to automatically engage the second filament upon the failure of the first filament.

6. An x-ray tube comprising:

a first focusing cup;

a second focusing cup;

an anode;

a first filament located between the first focusing cup and the anode;

a second filament positioned between the second focusing cup and the anode;

a switching mechanism configured to engage the second filament upon failure of the first filament; and

a first electrode and a second electrode positioned between both (1) the first focusing cup and the second focusing cup and (2) the anode, wherein the first electrode is positioned opposite an electron beam path from the second electrode, wherein the first electrode and the second electrode are configured to:

when a first control signal is applied across the first electrode and the second electrode, generate a first electric field that moves a first electron beam generated from the first filament in a first direction, and

when a second control signal is applied across the first electrode and the second electrode, generate a second electric field that moves a second electron beam generated from the second filament in a second direction.

7. The x-ray tube of claim 6 , wherein:

the first filament is configured to generate the first electron beam having a first focal spot on the anode;

the second filament is configured to generate the second electron beam; and

the first control signal is configured to move the second electron beam such that the second electron beam has a second focal spot on the anode that is substantially the same as the first focal spot.

8. The x-ray tube of claim 6 , wherein

the first filament is configured to generate the first electron beam having a first focal spot on the anode;

the second filament is configured to generate the second electron beam; and

the first focusing cup and the second focusing cup are positioned such that the second electron beam has a second focal spot on the anode that is substantially the same as the first focal spot.

9. The x-ray tube of claim 6 , wherein the switching mechanism is a mechanical switch.

10. A method for producing x-rays from an x-ray tube, the method comprising:

receiving a first activation request for the x-ray tube;

activating a first filament in the x-ray tube to generate a first x-ray imaging beam;

receiving an indication that the first filament has failed;

based on the indication that the first filament has failed, engaging a second filament in the x-ray tube;

receiving a second activation request for the x-ray tube;

activating a second filament in the x-ray tube to generate a second x-ray imaging beam that is substantially similar the first x-ray imaging beam;

activating a first control signal applied across a pair of electrodes positioned opposite an electron beam path of both the first filament and the second filament to move a first electron beam generated from the first filament in a first direction; and

activating a second control signal applied across the pair of electrodes to move a second electron beam generated from the second filament in a second direction.

11. The method of claim 10 , wherein activating the first filament comprises applying a voltage across the first filament.

12. The method of claim 10 , wherein activating the second filament comprises applying a voltage across the second filament.

13. The method of claim 10 , wherein engaging the second filament comprises switching a mechanical switch.

14. The method of claim 10 , wherein the indication that the first filament has failed is a trigger signal generated based on a high resistance of the first filament.

15. The method of claim 10 , wherein the control signal is activated concurrently with the activation of the second filament.

Assignments (3)
SECURITY INTEREST Recorded Apr 8, 2026
From: BIOTHERANOSTICS, INC.; GEN-PROBE INCORPORATED; GEN-PROBE PRODESSE, INC.; CYTYC CORPORATION; SUROS SURGICAL SYSTEMS, INC.; GYNESONICS, INC.; BOLDER SURGICAL, LLC; FAXITRON BIOPTICS, LLC; HEALTH BEACONS, INC.; HOLOGIC, INC.
To: ROYAL BANK OF CANADA, AS COLLATERAL AGENT
Reel/Frame 075462/0440 →
SECURITY INTEREST Recorded Oct 12, 2021
From: HOLOGIC, INC.; FAXITRON BIOPTICS, LLC; BIOTHERANOSTICS, INC.; GEN-PROBE INCORPORATED; GEN-PROBE PRODESSE, INC.
To: BANK OF AMERICA, N.A., AS COLLATERAL AGENT
Reel/Frame 057787/0526 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 5, 2020
From: RU, GUOYUN
To: HOLOGIC, INC.
Reel/Frame 054555/0963 →
Continuity (2)
Provisional Application 62944126 · Dec 5, 2019
Related Publication 20210176850A1 · Jun 10, 2021
Cited By (2)
US 12,414,217 US 12,476,066