IP Library Granted Patent US 9,974,153
Granted Patent B2
US 9,974,153 · App. 14/864,620 · Granted May 15, 2018

Controlling filament current of computed tomography tube

Inventor: Zhewen Jiang (Shenyang, CN)
Assignee: Shenyang Neusoft Medical Systems Co., Ltd.
H05G1/34H05G1/08H05G1/085H05G1/26H05G1/265H05G1/30H05G1/32A61B6/032
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Quick Facts
Patent No.
US 9,974,153
App. No.
14/864,620
Granted
May 15, 2018
Kind
B2
Abstract

A method for controlling filament current of a computed tomography (CT) tube includes: detecting a present tube current of the CT tube and assigning the present tube current to a feedback value, calculating a difference between a set value of the tube current and the feedback value and assigning the difference to an error value, assigning a target upper bound value to a present filament current when the error value is greater than an first error threshold, and assigning a target lower bound value to the present filament current when the error value is less than a second error threshold, wherein the target upper bound value is greater than the target lower bound value, the first error threshold is greater than 0, and the second error threshold is less than 0.

Claims (51)

1. A method for controlling a filament current of a computed tomography (CT) tube, comprising:

detecting a present tube current of the CT tube and assigning the present tube current to a feedback value;

calculating a difference between a set value of a tube current and the feedback value and assigning the difference to an error value;

setting a present filament current to be a target upper bound value when the error value is greater than a first error threshold; and

setting the present filament current to be a target lower bound value when the error value is less than a second error threshold;

wherein the target upper bound value is greater than the target lower bound value, the first error threshold is greater than 0, and the second error threshold is less than 0.

2. The method according to claim 1 , further comprising:

maintaining the present filament current unchanged when the error value is less than or equal to the first error threshold and the error value is greater than or equal to the second error threshold.

3. The method according to claim 1 , further comprising:

assigning a filament current value which corresponds to a tube current upper bound value of the CT tube in a work mode to a target upper bound to be calibrated of a filament current;

assigning a filament current value which corresponds to a tube current lower bound value of the CT tube in the work mode to a target lower bound to be calibrated of the filament current;

calibrating the target upper bound to be calibrated to obtain the target upper bound value; and

calibrating the target lower bound to be calibrated to obtain the target lower bound value.

4. The method according to claim 3 , wherein said calibrating the target upper bound to be calibrated and said calibrating the target lower bound to be calibrated comprise:

using the error value between the set value of the tube current and the feedback value to control the filament current of the CT tube to switch between the target upper bound to be calibrated and the target lower bound to be calibrated to obtain a target fluctuation difference value of the tube current of the CT tube;

decreasing the target upper bound to be calibrated and increasing the target lower bound to be calibrated when the target fluctuation difference value is greater than a first fluctuation threshold value;

increasing the target upper bound to be calibrated and decreasing the target lower bound to be calibrated when the target fluctuation difference value is less than a second fluctuation threshold value; and

identifying the target upper bound to be calibrated as the target upper bound value and identifying the target lower bound to be calibrated as the target lower bound value when the target fluctuation difference value is less than or equal to the first fluctuation threshold value and the target fluctuation difference value is greater than or equal to the second fluctuation threshold value;

wherein the first fluctuation threshold value is greater than the second fluctuation threshold value.

5. The method according to claim 4 , wherein the target fluctuation difference value is an absolute value of a maximum difference value between the feedback value and the set value of the tube current in a control process.

6. The method according to claim 5 , wherein said using the error value between the set value of the tube current and the feedback value to control the filament current of the CT tube to switch between the target upper bound to be calibrated and the target lower bound to be calibrated to obtain the target fluctuation difference value of the tube current of the CT tube comprises:

assigning the tube current upper bound value of the CT tube being in the work mode to the set value of the tube current, using the error value between the tube current upper bound value and the feedback value to control the filament current of the CT tube to switch between the target upper bound to be calibrated and the target lower bound to be calibrated to obtain a first fluctuation range of the tube current of the CT tube, and calculating a first fluctuation difference value of the first fluctuation range;

assigning the tube current lower bound value of the CT tube being in the work mode to the set value of the tube current, using the error value between the tube current lower bound value and the feedback value to control the filament current of the CT tube to switch between the target upper bound to be calibrated and the target lower bound to be calibrated to obtain a second fluctuation range of the tube current of the CT tube, and calculating a second fluctuation difference value of the second fluctuation range;

selecting the first fluctuation difference value to be the target fluctuation difference value when the first fluctuation difference value is greater than the second fluctuation difference value; and

selecting the second fluctuation difference value to be the target fluctuation difference value when the first fluctuation difference value is less than or equal to the second fluctuation difference value.

7. An apparatus for controlling a filament current of a computed tomography (CT) tube, comprising:

a processor, wherein the processor reads and executes machine readable instructions of a control logic for controlling a filament current stored in a storage and is caused to:

detect a present tube current of the CT tube and assign the present tube current to a feedback value;

calculate a difference between a set value of a tube current and the feedback value and assign the difference to an error value;

set a present filament current to be a target upper bound value when the error value is greater than a first error threshold; and

set the present filament current to be a target lower bound value when the error value is less than a second error threshold;

wherein the target upper bound value is greater than the target lower bound value, the first error threshold is greater than 0, and the second error threshold is less than 0.

8. The apparatus according to claim 7 , wherein the machine readable instructions further cause the processor to:

maintain the present filament current unchanged when the error value is less than or equal to the first error threshold and the error value is greater than or equal to the second error threshold.

9. The apparatus according to claim 7 , wherein the machine readable instructions further cause the processor to:

assign a filament current value which corresponds to a tube current upper bound value of the CT tube being in a work mode to a target upper bound to be calibrated of the filament current;

assign a filament current value which corresponds to a tube current lower bound value of the CT tube being in the work mode to a target lower bound to be calibrated of the filament current;

calibrate the target upper bound to be calibrated to obtain the target upper bound value; and

calibrate the target lower bound to be calibrated to obtain the target lower bound value.

10. The apparatus according to claim 9 , wherein the machine readable instructions further cause the processor to:

use the error value between the set value of the tube current and the feedback value to control the filament current of the CT tube to switch between the target upper bound to be calibrated and the target lower bound to be calibrated to obtain a target fluctuation difference value of the tube current of the CT tube;

decrease the target upper bound to be calibrated and increase the target lower bound to be calibrated when the target fluctuation difference value is greater than a first fluctuation threshold value;

increase the target upper bound to be calibrated and decrease the target lower bound to be calibrated when the target fluctuation difference value is less than a second fluctuation threshold value; and

identify the target upper bound to be calibrated as the target upper bound value and identify the target lower bound to be calibrated as the target lower bound value when the target fluctuation difference value is less than or equal to the first fluctuation threshold value and the target fluctuation difference value is greater than or equal to the second fluctuation threshold value;

wherein the first fluctuation threshold value is greater than the second fluctuation threshold value.

11. The apparatus according to claim 10 , wherein the target fluctuation difference value is an absolute value of a maximum difference value between the feedback value and the set value of the tube current in a control process.

12. The apparatus according to claim 11 , wherein the machine readable instructions further cause the processor to:

assign the tube current upper bound value of the CT tube in the work mode to the set value of the tube current, use the error value between the tube current upper bound value and the feedback value to control the filament current of the CT tube to switch between the target upper bound to be calibrated and the target lower bound to be calibrated to obtain a first fluctuation range of the tube current of the CT tube, and calculate a first fluctuation difference value of the first fluctuation range;

assign the tube current lower bound value of the CT tube being in the work mode to the set value of the tube current, use the error value between the tube current lower bound value and the feedback value to control the filament current of the CT tube to switch between the target upper bound to be calibrated and the target lower bound to be calibrated to obtain a second fluctuation range of the tube current of the CT tube, and calculate a second fluctuation difference value of the second fluctuation range;

select the first fluctuation difference value to be the target fluctuation difference value when the first fluctuation difference value is greater than the second fluctuation difference value; and

select the second fluctuation difference value to be the target fluctuation difference value when the first fluctuation difference value is less than or equal to the second fluctuation difference value.

Assignments (3)
CHANGE OF NAME Recorded Apr 15, 2020
From: SHENYANG NEUSOFT MEDICAL SYSTEMS CO., LTD.
To: NEUSOFT MEDICAL SYSTEMS CO., LTD.
Reel/Frame 052410/0384 →
CORRECTIVE ASSIGNMENT TO CORRECT THE RECEIVING PARTY NAME PREVIOUSLY RECORDED AT REEL: 036973 FRAME: 0026. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded May 18, 2017
From: JIANG, ZHEWEN
To: SHENYANG NEUSOFT MEDICAL SYSTEMS CO., LTD.
Reel/Frame 042496/0141 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 5, 2015
From: JIANG, ZHEWEN
To: NEUSOFT MEDICAL SYSTEMS CO., LTD.
Reel/Frame 036973/0026 →
Priority Claims (1)
CN 2014 1 0494104 · Sep 24, 2014 · national
Continuity (1)
Related Publication 20160088718A1 · Mar 24, 2016