IP Library Granted Patent US 9,244,140
Granted Patent B1
US 9,244,140 · App. 14/450,751 · Granted Jan 26, 2016

Magnetic resonance imaging apparatus

Inventors: Raymond V. Damadian (Woodbury, NY); Gordon T. Danby (Wading River, NY); Hank Hsieh (Berkeley, CA); John W. Jackson (Shoreham, NY); Mark Gelbien (Levittown, NY); William H. Wahl (Smithtown, NY); Charles A. Green (Holbrook, NY)
Assignee: FONAR Corporation
G01R33/3875G01R33/307G01R33/3804G01R33/3815G01R35/005
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Quick Facts
Patent No.
US 9,244,140
App. No.
14/450,751
Granted
Jan 26, 2016
Kind
B1
Abstract

A magnetic resonance imaging configuration, apparatus and method to straighten and otherwise homogenize the field lines in the imaging portion, creating improved image quality. Through use of calibrated corrective coils, magnetic field lines can be manipulated to improve uniformity and image quality. Additionally, when the apparatus is composed of non-ferromagnetic materials, field strengths can be increased to overcome limitations of Iron-based systems such as by use of superconductivity. A patient positioning apparatus allows multi-positioning of a patient within the calibrated and more uniform magnetic field lines.

Claims (40)

1. A magnetic resonance imaging system for correcting inhomogeneities in magnetic resonance imagers comprising;

a patient positioning apparatus, said patient positioning apparatus having a bed, a patient situated on said bed being within a field generated by a magnetic resonance imager and along a pole thereof, said field containing inhomogeneities within a patient-receiving portion thereof, said patient positioned within a patient-receiving portion of said field;

a frame, said frame isocentrically aligned about said field; and

a plurality of correction magnets affixed to said frame, each said correction magnet isocentrically aligned within said field,

said plurality of correction magnets correcting said inhomogeneities and straightening field lines associated with said field within said patient-receiving portion,

wherein said plurality of correction magnets are coils, and

wherein at least one of said plurality of correction magnets being flexibly positionable to correct said inhomogeneities within said field.

2. The magnetic resonance imaging system according to claim 1 , wherein said field is produced by a primary magnet, said primary magnet being a superconducting magnet.

3. The magnetic resonance imaging system according to claim 2 , further comprising:

a superconductive cooler, said superconductive cooler cooling said superconducting magnet to superconductive temperatures.

4. The magnetic resonance imaging system according to claim 3 , wherein said superconductive cooler is selected from the group consisting of immersion cooling, thermal siphoning, conduction cooling and combinations thereof.

5. The magnetic resonance imaging system according to claim 3 , further comprising:

a first support, said first support supporting said primary and at least one of said plurality of corrective magnets; and

a second support, said second support supporting said superconductive cooler.

6. The magnetic resonance imaging system according to claim 1 , wherein at least one of said plurality of correction magnets is a superconducting magnet.

7. The magnetic resonance imaging system according to claim 6 , further comprising:

a superconductive cooler, said superconductive cooler cooling said superconductive magnet to superconductive temperatures.

8. The magnetic resonance imaging system according to claim 7 , wherein said superconductive cooler is selected from the group consisting of immersion cooling, thermal siphoning, conduction cooling and combinations thereof.

9. The magnetic resonance imaging system according to claim 1 , wherein said plurality of correction magnets is selected from the group consisting of at least two correction magnets, at least three correction magnets and at least four correction magnets.

10. The magnetic resonance imaging system according to claim 1 , wherein respective correction magnets are spaced apart from one another in unequal spacings.

11. The magnetic resonance imaging system according to claim 1 , wherein respective correction magnets have differing operational current strengths.

12. The magnetic resonance imaging system according to claim 1 , wherein said frame comprises a non-ferromagnetic material.

13. The magnetic resonance imaging system according to claim 12 , wherein said non-ferromagnetic material is selected from the group consisting of concrete and aluminum and combinations thereof.

14. The magnetic resonance imaging system according to claim 1 , wherein at least a portion of said frame comprises Iron.

15. The magnetic resonance imaging system according to claim 1 , wherein said patient positioning apparatus further comprises:

a positioner, said positioner having a plurality of positions, at least one of said positions positioning an anatomical region of interest of a patient substantially within said patient-receiving portion.

16. The magnetic resonance imaging system according to claim 15 , wherein said positioner positions said patient horizontally, vertically, sitting down, rotated, angled, translated or combinations thereof.

17. The magnetic resonance imaging system according to claim 1 , wherein said primary field has a strength selected from the group consisting of less than 0.5 T, 0.5-1.0 T, 1.0-1.5 T, 1.5-2.0 T, 2.0-2.5 T, 2.5-3.0 T, 3.0 T-3.1 T, 3.1 T-3.2 T, 3.2 T-3.5 T, 3.5 T-4.0 T and above 4.0 T.

18. The magnetic resonance imaging system according to claim 1 , further comprising:

at least one shim, said shim placed substantially isocentrically within said field and adjacent at least one of said plurality of correction magnets.

19. A method for smoothing inhomogeneities within a magnetic resonance imaging system, comprising:

determining inhomogeneities within a primary field generated by a primary magnet, said inhomogeneities contained within a patient-receiving portion;

calibrating at least one of a plurality of correction magnets placed isocentrically within said primary field,

said calibrating substantially correcting said inhomogeneities and straightening field lines associated with said primary field within said patient-receiving portion; and

positioning a patient, using a patient positioning apparatus, about said patient-receiving portion,

wherein said plurality of correction magnets are coils,

wherein said primary magnet comprises a first upper coil and a second lower coil,

wherein said at least one of a plurality of correction magnets comprises respective at least one upper corrective coil and at least one lower corrective coil, and

wherein the distance between said first upper coil and said second lower coil is greater than the distance between said at least one upper corrective coil and said at least one lower corrective coil.

20. The method according to claim 19 , wherein said calibrating comprises adjusting a current strength within a respective correction magnet.

Assignments (2)
SECURITY INTEREST Recorded Jun 5, 2026
From: FONAR, LLC; FONAR ACQUISITION SUB INC.; FONAR CORPORATION
To: OCEANFIRST BANK N.A.
Reel/Frame 075696/0170 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 17, 2015
From: DAMADIAN, RAYMOND V.; DANBY, GORDON T.; HSIEH, HANK; JACKSON, JOHN W.; GELBIEN, MARK; WAHL, WILLIAM H.; GREEN, CHARLES A.
To: FONAR CORPORATION
Reel/Frame 036628/0678 →
Continuity (3)
Division 13763286 · Feb 8, 2013
Division 12379221 · Feb 17, 2009
Provisional Application 61028769 · Feb 14, 2008