IP Library Granted Patent US 11,320,500
Granted Patent B2
US 11,320,500 · App. 16/275,700 · Granted May 3, 2022

Cryogenic device for magnetic resonance imagery scanner and magnetic resonance imagery assembly comprising such cryogenic device

Inventors: Gilles Authelet (Gif-sur-Yvette, FR); Marie Poirier-Quinot (Orsay, FR); Bertrand Baudouy (Gif-sur-Yvette, FR)
Assignees: COMMISSARIAT À L'ÉNERGIE ATOMIQUE ET AUX ÉNERGIES ALTERNATIVES; UNIVERSITE PARIS-SACLAY
G01R33/3403F25B9/145G01R33/34023G01R33/543H01F6/04H01F6/06
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 11,320,500
App. No.
16/275,700
Granted
May 3, 2022
Kind
B2
Abstract

A cryogenic device for cooling an RF coil of a Magnetic Resonance Imaging scanner. The cryogenic device includes: a cryocooler providing a cold source; a solid thermal link; the solid thermal link in thermal contact with the cryocooler; a RF coil holder for holding the RF coil, the RF coil holder being in thermal contact with thermal link; a vacuum chamber enclosing the solid thermal link and the RF-coil holder; a measurement surface, facing the RF coil holder; wherein each one of the cryocooler, the solid thermal link, the RF coil holder and the measurement surface is magnetic material free.

Claims (54)

1. A cryogenic device for cooling a RF coil for a Magnetic Resonance Imaging system, the cryogenic device comprising:

a cryocooler providing a cold source,

a solid thermal link, the solid thermal link having first end in thermal contact with the cryocooler,

a RF coil holder for holding the RF coil, the RF coil holder being in thermal contact with a second end of the solid thermal link opposite to the first end,

a vacuum chamber enclosing the solid thermal link and the RF-coil holder,

a measurement surface facing the RF coil holder,

a heating source, and

a controller configured to control heat applied by the heating source,

wherein each one of the cryocooler, the solid thermal link, the RF coil holder, the heating source, and the measurement surface is made of non-magnetic materials, and

wherein the controller is configured to control the heat applied by the heating source using a feedback loop based on a Magnetic Resonance measurement signal from a Magnetic Resonance Imaging scanner.

2. The cryogenic device according claim 1 , wherein the cryocooler is a pulse tube cryocooler system.

3. The cryogenic device according to claim 2 ,

wherein the pulse tube cryocooler system includes two parts, one part being the pulse tube cryocooler and the other part being a motorized valve,

wherein the cryogenic comprises a compressor, the compressor being connected to the pulse tube cryocooler by the means of the motorized valve, and

wherein the cryocooler and the motorized valve are distant from each other.

4. The cryogenic device according to claim 3 , wherein the cryocooler and the motorized valve are connected using a first flexible connection.

5. The cryogenic device according to claim 4 ,

wherein the cryogenic device comprises a carriage, the carriage being arranged in such way it can carry the cryocooler, the cryostat, the RF coil holder, and the compressor, and

wherein the compressor is mounted on the carriage, the compressor being connected to the motorized valve with a second flexible connection.

6. The cryogenic device according to claim 1 , wherein the cryogenic device comprises a passive pumping system of the vacuum chamber.

7. The cryogenic device according to claim 4 , wherein the passive pumping system is an adsorption pumping surface made of active charcoal.

8. The cryogenic device according to claim 1 , wherein the solid thermal link is made of a plurality of metal sheets.

9. The cryogenic device according to claim 1 , wherein the solid thermal link is made of a plurality of pure aluminum sheets.

10. The cryogenic device according to claim 1 , wherein the solid thermal link and the RF coil holder are in thermal contact by the means of a support part.

11. The cryogenic device according to claim 10 , wherein the support part is made at least partially in copper.

12. The cryogenic device according to claim 11 , wherein the support part has a general cylinder shape and comprised at least two parts.

13. The cryogenic device according to claim 1 , wherein the heat source includes a resistive film heater provided with a supporting part supporting the RF coil holder, the supporting part providing a thermal link between the film heater and the RF coil holder.

14. A Magnetic Resonance Imaging assembly comprising:

the Magnetic Resonance Imaging scanner,

a RF coil, and

the cryogenic device according to claim 1 ,

wherein the RF coil is arranged on the RF coil holder facing the measurement surface.

15. Magnetic Resonance Imaging method comprising the step of:

providing a magnetic resonance imaging assembly,

applying cold to the RF coil using a cryogenic device,

carrying out Magnetic Resonance Imaging using an RF coil of the magnetic imaging assembly, the RF coil being cooled by the cryogenic device,

wherein the magnetic Resonance Imaging assembly comprises:

a Magnetic Resonance Imaging scanner,

the RF coil, and

a cryogenic device,

wherein the cryogenic device comprises:

a cryocooler providing a cold source,

a solid thermal link, the solid thermal link having first end in thermal contact with the cryocooler,

a RF coil holder for holding the RF coil, the RF coil holder being in thermal contact with a second end of the solid thermal link opposite to the first end,

a vacuum chamber enclosing the solid thermal link and the RF-coil holder,

a measurement surface facing the RF coil holder,

a heating source, and

a controller configured to control the heat applied by the heating source,

wherein each one of the cryocooler, the solid thermal link, the RF coil holder, the measurement surface, and the heating source is made of non-magnetic materials,

wherein the controller is configured to control the heat applied by the heating source using a feedback loop based on a Magnetic Resonance measurement signal from the Magnetic Resonance Imaging scanner, and

wherein the RF coil is arranged on the RF coil holder facing the measurement surface.

16. The Magnetic Resonance Imaging method according to claim 15 , wherein the Magnetic Resonance Imaging method further includes, between the step of applying cold and the step of carrying out the Magnetic Resonance Imaging, the steps of:

configuring the Magnetic Resonance Imaging scanner, and

while cold is still applied and the Magnetic Resonance Measurement System is being configured, tuning a resonance frequency of the RF coil by increasing the temperature of the RF coil using the heat source.

Assignments (2)
MERGER Recorded Feb 16, 2022
From: UNIVERSITE PARIS SUD XI; INSTITUT DES SCIENCES ET INDUSTRIES DU VIVANT ET DE L'ENVIRONNEMENT; INSTITUT D'OPTIQUE; INSTITUT DES HOUTES ETUDES SCIENTIFIQUES; UNIVERSITÉS DE VERSAILLES-SAINT-QUENTIN-EN-YVELINES ET EVRY-VALD'ESSONNE
To: UNIVERSITE PARIS-SACLAY
Reel/Frame 059328/0698 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 15, 2019
From: AUTHELET, GILLES; POIRIER-QUINOT, MARIE; BAUDOUY, BERTRAND
To: COMMISSARIAT À L'ÉNERGIE ATOMIQUE ET AUX ÉNERGIES ALTERNATIVES; UNIVERSITE PARIS SUD XI
Reel/Frame 048885/0250 →
Continuity (2)
Provisional Application 62785907 · Dec 28, 2018
Related Publication 20200209329A1 · Jul 2, 2020
Cited By (2)
US 12,656,427 US 12,704,571