IP Library Granted Patent US 10,591,564
Granted Patent B2
US 10,591,564 · App. 15/132,742 · Granted Mar 17, 2020

Automatic configuration of a low field magnetic resonance imaging system

Inventors: Jonathan M. Rothberg (Guilford, CT); Jeremy Christopher Jordan (Cromwell, CT); Michael Stephen Poole (Guilford, CT); Laura Sacolick (Madison, CT); Todd Rearick (Cheshire, CT); Gregory L. Charvat (Guilford, CT)
Assignee: Hyperfine Research, Inc.
G01R33/5608G01R33/28G01R33/34007G01R33/36G01R33/3614G01R33/38G01R33/381G01R33/3802G01R33/383G01R33/3804G01R33/385G01R33/3806G01R33/3852G01R33/3854G01R33/3856G01R33/3858G01R33/3875G01R33/445G01R33/48G01R33/543G01R33/546G01R33/56G01R33/56518G01R33/58H01F7/02H01F7/06G01R33/422
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Quick Facts
Patent No.
US 10,591,564
App. No.
15/132,742
Granted
Mar 17, 2020
Kind
B2
Abstract

In some aspects, a method of operating a magnetic resonance imaging system comprising a B 0 magnet and at least one thermal management component configured to transfer heat away from the B 0 magnet during operation is provided. The method comprises providing operating power to the B 0 magnet, monitoring a temperature of the B 0 magnet to determine a current temperature of the B 0 magnet, and operating the at least one thermal management component at less than operational capacity in response to an occurrence of at least one event.

Claims (33)

1. A method of operating a magnetic resonance imaging (MRI) system comprising a B 0 magnet and at least one thermal management component configured to transfer heat away from the B 0 magnet during operation using fluid coolant, the method comprising:

providing, using a power supply, operating power to the B 0 magnet;

powering up the MRI system, the powering up comprising:

monitoring, using a temperature sensor and/or a voltage sensor, a temperature of the B 0 magnet to determine a current temperature of the B 0 magnet; and

when the current temperature of the B 0 magnet is below a first threshold temperature value, operating the at least one thermal management component at less than operational capacity in response to an occurrence of at least one event to reduce a time needed for the B 0 magnet to be ready for imaging, wherein the at least one event comprises powering up the MRI system;

wherein the at least one thermal management component comprises at least one conduit configured to circulate fluid coolant to transfer heat away from the B 0 magnet during operation;

wherein operating the at least one thermal management component at less than operational capacity comprises operating the B 0 magnet using a reduced amount of current to reduce power consumption in a low power mode; and

after powering up the MRI system, acquiring at least one image using the MRI system.

2. The method of claim 1 , wherein monitoring the temperature of the B 0 magnet comprises using the temperature sensor to monitor the temperature.

3. The method of claim 1 , wherein monitoring the temperature of the B 0 magnet comprises measuring a voltage associated with the B 0 magnet using the voltage sensor.

4. The method of claim 1 , wherein the first threshold value corresponds to a thermal equilibrium and/or a B 0 field stability of the B 0 magnet.

5. The method of claim 1 , further comprising determining fluctuations in at least one parameter of the magnetic resonance imaging system, and wherein acquiring the at least one image comprises compensating for the determined fluctuations in the at least one parameter.

6. The method of claim 5 , wherein the at least one parameter is a Larmor frequency of the B 0 magnet and/or a homogeneity of the B 0 field produced by the B 0 magnet.

7. The method of claim 5 , wherein determining fluctuations in the at least one parameter comprises determining fluctuations based, at least in part, on the current temperature of the B 0 magnet.

8. The method of claim 7 , wherein monitoring the temperature of the B 0 magnet comprises measuring a voltage associated with the B 0 magnet using the voltage sensor, and wherein determining fluctuations in the at least one parameter comprises determining the fluctuations based, at least in part, on the measured voltage of the B 0 magnet.

9. The method of claim 1 , wherein the magnetic resonance imaging system further comprises at least one gradient coil, and wherein the method further comprises modifying an operating state of the at least one gradient coil in response to the occurrence of the at least one event.

10. The method of claim 9 , wherein modifying the operating state of the at least one gradient coil comprises providing operating power to the at least one gradient coil.

11. The method of claim 9 , wherein modifying the operating state of the at least one gradient coil comprises reducing operating power provided to the at least one gradient coil.

12. The method of claim 1 , further comprising operating the B 0 magnet to produce at least a portion of a B 0 field suitable for low-field magnetic resonance imaging.

13. A magnetic resonance imaging (MRI) system, comprising:

a B 0 magnet configured to provide at least a portion of a B 0 field;

at least one thermal management component configured to transfer heat away from the B 0 magnet during operation using fluid coolant;

a temperature sensor and/or a voltage sensor configured to monitor a temperature of the B 0 magnet; and

at least one processor programmed to:

during powering up of the MRI system:

obtain a current temperature of the B 0 magnet using the temperature sensor and/or the voltage sensor;

when the current temperature of the B 0 magnet is below a first threshold temperature value,

operate the at least one thermal management component at less than operational capacity in response to an occurrence of at least one event to reduce a time needed for the B 0 magnet to be ready for imaging, and wherein the at least one thermal management component comprises at least one conduit configured to circulate fluid coolant to transfer heat away from the B 0 magnet during operation, wherein the at least one event comprises powering up the MRI system, and wherein operating the at least one thermal management component at less than operational capacity comprises operating the B 0 magnet using a reduced amount of current to reduce power consumption in a low power mode; and

after powering up the MRI system, cause the MRI system to acquire at least one image.

14. The magnetic resonance imaging system of claim 13 , further comprising at least one gradient coil, and wherein the at least one processor is further programmed to control an operating state of the at least one gradient coil based, at least in part, on the current temperature of the B 0 magnet.

15. The magnetic resonance imaging system of claim 13 , further comprising at least one radio frequency coil configured to provide a B 1 field, and wherein the at least one processor is further programmed to control an operating state of the at least one radio frequency coil based, at least in part, on the current temperature of the magnet.

16. The magnetic resonance imaging system of claim 13 , further comprising at least one shim coil, and wherein the at least one processor is further programmed to control an operating state of the at least one shim coil based, at least in part, on the current temperature of the B 0 magnet.

17. The magnetic resonance imaging system of claim 13 , wherein the B 0 magnet is configured to provide a B 0 field suitable for low-field magnetic resonance imaging.

Assignments (3)
CHANGE OF NAME Recorded Mar 7, 2022
From: HYPERFINE, INC.
To: HYPERFINE OPERATIONS, INC.
Reel/Frame 059332/0615 →
CHANGE OF NAME Recorded Jun 28, 2021
From: HYPERFINE RESEARCH, INC.
To: HYPERFINE, INC.
Reel/Frame 056700/0908 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 31, 2016
From: ROTHBERG, JONATHAN M.; JORDAN, JEREMY CHRISTOPHER; POOLE, MICHAEL STEPHEN; SACOLICK, LAURA; REARICK, TODD; CHARVAT, GREGORY L.
To: HYPERFINE RESEARCH, INC.
Reel/Frame 039599/0589 →
Continuity (6)
Continuation 14846158 · Sep 4, 2015
Provisional Application 62174666 · Jun 12, 2015
Provisional Application 62111320 · Feb 3, 2015
Provisional Application 62110049 · Jan 30, 2015
Provisional Application 62046814 · Sep 5, 2014
Related Publication 20160231399A1 · Aug 11, 2016
Cited By (1)
US 12,672,791