IP Library › Granted Patent US 12,248,042
Granted Patent B2
US 12,248,042 · App. 18/108,812 · Granted Mar 11, 2025

Method and system for controlling a ramping process of a magnetic resonance imaging device

Inventor: Hai Ning Yang (Shenzhen, CN)
Assignee: Siemens Healthcare Limited
G01R33/3815G01R33/3804
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Quick Facts
Patent No.
US 12,248,042
App. No.
18/108,812
Granted
Mar 11, 2025
Kind
B2
Abstract

Techniques are provided for controlling a ramping process of a superconducting magnet of a magnetic resonance imaging device comprising the steps of: acquiring an information indicating a status of a cryocooler configured for cooling of the superconducting magnet via an interface, acquiring an information on a parameter of the superconducting magnet via an interface, determining an operational status of the magnetic resonance imaging device in dependence of the information indicating the status of the cryocooler and/or the information on the parameter of the superconducting magnet via a processing unit and providing a control signal via a control unit, wherein the control signal is configured to control the ramping process of the superconducting magnet. The disclosure also relates to a magnetic resonance imaging system comprising a control unit configured to provide a control signal for controlling the ramping process of the superconducting magnet.

Claims (43)

1. A computer-implemented method for controlling a ramping process of a superconducting magnet of a magnetic resonance imaging device, comprising:

receiving, via an interface, cryocooler status data indicative of a status of a cryocooler configured to cool the superconducting magnet;

receiving, via the interface, superconducting magnet data indicative of a parameter of the superconducting magnet comprising a value of an electrical property and/or a physical property of the superconducting magnet that is measured via at least one sensor;

determining, via processing circuitry, an operational status of the magnetic resonance imaging device based upon (i) the cryocooler status data, and (ii) the superconducting magnet data; and

generating, via a controller, a control signal that controls the ramping process of the superconducting magnet,

wherein the control signal is from among a set of dedicated control signals, each respective one of the dedicated control signals being generated based upon the determined operational status of the magnetic resonance imaging device and the cryocooler status data to control the ramping process of the superconducting magnet in response to (i) the cryocooler status data indicating that a turn-off time of a compressor of the cryocooler exceeds a predetermined threshold time period, and (ii) the superconducting magnet data.

2. The method according to claim 1 , wherein the superconducting magnet data acquired via the at least one sensor comprises a voltage, a current, a magnetic field, and/or a temperature of the superconducting magnet.

3. The method according to claim 1 , wherein the receiving the cryocooler status data comprises:

acquiring data indicative of a capacity of the cryocooler for maintaining a predefined cooling condition.

4. The method according to claim 1 , wherein the receiving the cryocooler status data comprises:

acquiring the turn-off time of the compressor of the cryocooler, and

wherein the determining the operational status of the magnetic resonance imaging device comprises:

correlating the turn-off time of the compressor with at least one reference time to determine whether the turn-off time of the compressor of the cryocooler exceeds the predetermined threshold time period.

5. The method according to claim 4 , wherein the at least one reference time comprises a first reference time and a second reference time, and

wherein the determining the operational status of the magnetic resonance imaging device comprises:

correlating the turn-off time of the compressor with the first reference time and the second reference time.

6. The method according to claim 4 , wherein:

the at least one reference time comprises a first reference time and a second reference time,

the determining the operational status of the magnetic resonance imaging device comprises correlating the turn-off time of the compressor with the first reference time and the second reference time to determine if a magnetic resonance measurement may be performed.

7. The method according to claim 6 , wherein the generating the control signal comprises generating the respective dedicated control signal such that the superconducting magnet is ramped down prior to performing the magnetic resonance measurement in response to (i) the cryocooler status data indicating that a turn-off time of the compressor of the cryocooler exceeds the first and the second reference time, and (ii) the superconducting magnet data indicating that the magnetic resonance imaging device is ready to perform the magnetic resonance measurement.

8. The method according to claim 1 , wherein the determining the operational status of the magnetic resonance imaging device comprises:

assessing a readiness of the superconducting magnet to perform a magnetic resonance imaging measurement based upon the superconducting magnet data.

9. The method according to claim 8 , wherein when the operational status of the magnetic resonance imaging device is assessed as being ready to perform the magnetic resonance imaging measurement, the generating the control signal comprises:

generating the control signal for ramping down the superconducting magnet.

10. The method according to claim 8 , wherein the determining the operational status of the magnetic resonance imaging device comprises:

when a present ramping process is detected based upon the superconducting magnet data, the magnetic resonance imaging device is assessed as being unready to perform the magnetic resonance imaging measurement.

11. The method according to claim 1 , wherein the receiving the superconducting magnet data comprises acquiring a voltage of the superconducting magnet via the at least one sensor, and

wherein the determining the operational status of the magnetic resonance imaging device comprises:

assessing the superconducting magnet to be ramping down when the voltage of the superconducting magnet is less than a predefined value.

12. The method according to claim 1 , wherein the receiving the superconducting magnet data comprises acquiring a voltage of the superconducting magnet via the at least one sensor, and

wherein the determining the operational status of the magnetic resonance imaging device comprises:

assessing the superconducting magnet to be ramping up when the voltage of the superconducting magnet exceeds a predefined value.

13. The method according to claim 1 , wherein the generating the control signal comprises:

generating the control signal for interrupting a ramping up of the superconducting magnet.

14. The method according to claim 1 , wherein the generating the control signal comprises generating the control signal that controls the ramping process of the superconducting magnet by (i) triggering initiation of a ramp-up process or a ramp-down process, (ii) maintaining a current ramp-up or a current ramp-down process, or (iii) interrupting a current ramp-up or a current ramp-down process.

15. The method according to claim 1 , wherein each respective one of the dedicated control signals is generated based upon the determined operational status of the magnetic resonance imaging device and the cryocooler status data such that the superconducting magnet is ramped down prior to performing a magnetic resonance measurement in response to (i) the cryocooler status data indicating that the turn-off time of the compressor of the cryocooler exceeds the predetermined threshold time period, and (ii) the superconducting magnet data indicating that the magnetic resonance imaging device is ready to perform the magnetic resonance measurement.

16. A magnetic resonance imaging system, comprising:

a magnetic resonance imaging device;

a superconducting magnet;

an interface configured to receive cryocooler status data indicative of a status of a cryocooler and superconducting magnet data indicative of a parameter of the superconducting magnet comprising a value of an electrical property and/or a physical property of the superconducting magnet that is measured via at least one sensor;

processing circuitry configured to determine an operational status of the magnetic resonance imaging device based upon the cryocooler status data and the superconducting magnet data; and

a controller configured to generate a control signal that controls a ramping process of the superconducting magnet,

wherein the control signal is from among a set of dedicated control signals, each respective one of the dedicated control signals being generated based upon the determined operational status of the magnetic resonance imaging device and the cryocooler status data to control the ramping process of the superconducting magnet in response to (i) the cryocooler status data indicating that a turn-off time of a compressor of the cryocooler exceeds a predetermined threshold time period, and (ii) the superconducting magnet data.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 23, 2024
From: YANG, HAI NING
To: SIEMENS SHENZHEN MAGNETIC RESONANCE LTD.
Reel/Frame 069665/0988 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 23, 2024
From: SIEMENS SHENZHEN MAGNETIC RESONANCE LTD.
To: SIEMENS HEALTHCARE LIMITED
Reel/Frame 069666/0095 →
Priority Claims (1)
EP 22157850 · Feb 21, 2022 · regional
Continuity (1)
Related Publication 20230266416A1 · Aug 24, 2023
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