IP Library Granted Patent US 10,132,888
Granted Patent B2
US 10,132,888 · App. 14/550,464 · Granted Nov 20, 2018

Self-shielded split gradient coil

Inventors: Shmaryu M. Shvartsman (Highland Heights, OH); Gordon D. Demeester (Wickliffe, OH); John L. Patrick (Chagrin Falls, OH); James F. Dempsey (Chagrin Falls, OH)
Assignee: ViewRay Technologies, Inc.
G01R33/3806G01R33/385G01R33/3856G01R33/3858G01R33/4215G01R33/4808A61N2005/1055
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Quick Facts
Patent No.
US 10,132,888
App. No.
14/550,464
Granted
Nov 20, 2018
Kind
B2
Abstract

Gradient coil assemblies for horizontal magnetic resonance imaging systems (MRIs) and methods of their manufacture. Some embodiments may be used with open MRIs and can be used with an instrument placed in the gap of the MRI. In general, concentrations of conductors or radially oriented conductors may be moved away from the gap of the MRI so as to reduce eddy currents that may be induced in any instrument placed within the gap. Systems for directly cooling primary gradient and shield coils may be utilized and various coil supporting structures may be used to assist in coil alignment or to facilitate use of an instrument in the MRI gap.

Claims (30)

1. A gradient coil assembly for use with a magnetic resonance imaging system (MRI), wherein the MRI has a longitudinal axis and a gap, and a radiation device produces a radiation beam aimed orthogonally to the longitudinal axis and through the gap, the gradient coil assembly comprising:

a plurality of primary gradient coils, wherein at least one of the primary gradient coils that traverses the gap of the MRI and has a first radiation attenuation value; and

a supporting structure containing the at least one of the primary gradient coils, the supporting structure having a portion that traverses the gap, the portion further comprising a filler causing the portion to have a second radiation attenuation value substantially equivalent to the first radiation attenuation value such that attenuation of the radiation beam will be substantially uniform as it passes through the portion and the at least one of the primary gradient coils that traverses the gap.

2. The gradient coil assembly of claim 1 , further comprising:

a plurality of shielding coils disposed within the portion; and

electrical connections between the primary gradient and shielding coils arranged so that the electrical connections are located a sufficient distance from the gap to reduce eddy currents induced in the radiation device.

3. The gradient coil assembly of claim 2 , wherein the electrical connections between the primary gradient and shielding coils are located at least 5 centimeters from the gap.

4. The gradient coil assembly of claim 1 , wherein one or more of the primary gradient coils are formed as substantially cylindrical conductors about the longitudinal axis.

5. The gradient coil assembly of claim 1 , wherein one or more of the primary gradient coils is directly cooled.

6. The gradient coil assembly of claim 5 , wherein one or more of the primary gradient coils comprises a hollow conductor.

7. The gradient coil assembly of claim 6 , further comprising two cooling units.

8. The gradient coil assembly of claim 2 , wherein the MRI has outer ends and the electrical connections between the primary gradient and shielding coils are located substantially at the outer ends of the MRI.

9. The gradient coil assembly of claim 1 , wherein the at least one primary gradient coil traversing the gap is aluminum.

10. A gradient coil assembly for use with a magnetic resonance imaging system (MRI), wherein the MRI has a longitudinal axis a gap, and a radiation device produces a radiation beam aimed orthogonally to the longitudinal axis and through the gap, the gradient coil assembly comprising:

a plurality of primary gradient coils, wherein at least one of the primary gradient coils is continuous across the gap of the MRI and has a first radiation attenuation value; and

a supporting structure containing the at least one of the primary gradient coils, the supporting structure having a portion that traverses the gap, the portion further comprising a filler causing the portion to have a second radiation attenuation value substantially equivalent to the first radiation attenuation value such that the supporting structure has a radiation attenuation that is consistent across the supporting structure.

11. The gradient coil assembly of claim 10 , further comprising:

a plurality of shielding coils disposed within the supporting structure portion; and

electrical connections between the primary gradient and shielding coils arranged so that the electrical connections are located a sufficient distance from the gap to reduce eddy currents induced in the radiation device.

12. The gradient coil assembly of claim 11 , wherein the electrical connections between the primary gradient and shielding coils are located at least 5 centimeters from the gap.

13. The gradient coil assembly of claim 10 , wherein one or more of the primary gradient coils are formed as substantially cylindrical conductors about the longitudinal axis.

14. The gradient coil assembly of claim 10 , wherein one or more of the primary gradient coils is directly cooled.

15. The gradient coil assembly of claim 14 , wherein one or more of the primary gradient coils comprises a hollow conductor.

16. The gradient coil assembly of claim 15 , further comprising two cooling units.

17. The gradient coil assembly of claim 11 , wherein the MRI has outer ends and the electrical connections between the primary gradient and shielding coils are located substantially at the outer ends of the MRI.

18. The gradient coil assembly of claim 10 , wherein the at least one primary gradient coil traversing the gap is aluminum.

19. A gradient coil assembly for use with a magnetic resonance imaging system (MRI), wherein the MRI has a longitudinal axis and a gap, and a radiation device produces a radiation beam aimed orthogonally to the longitudinal axis and through the gap, the gradient coil assembly comprising:

a plurality of primary gradient coils, wherein at least one of the primary gradient coils that traverses the gap of the MRI and has a first radiation attenuation value; and

a supporting structure containing the at least one of the primary gradient coils, the supporting structure having a portion that traverses the gap and the portion also having a filler causing a second radiation attenuation value such that attenuation of the radiation beam is consistent as it passes through the supporting structure portion and the at least one of the primary gradient coils that traverses the gap.

20. The gradient coil assembly of claim 19 , wherein the at least one primary gradient coil traversing the gap is aluminum.

Assignments (6)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 12, 2024
From: VIEWRAY, INC.; VIEWRAY TECHNOLOGIES, INC.
To: VIEWRAY SYSTEMS, INC.
Reel/Frame 067096/0625 →
SECURITY INTEREST Recorded Mar 24, 2023
From: VIEWRAY TECHNOLOGIES, INC.; VIEWRAY, INC.
To: MIDCAP FUNDING IV TRUST
Reel/Frame 063157/0703 →
RELEASE OF SECURITY INTEREST IN SPECIFIED PATENTS Recorded Dec 28, 2018
From: CAPITAL ROYALTY PARTNERS II L.P.; CAPITAL ROYALTY PARTNERS II (CAYMAN) L.P.; PARALLEL INVESTMENT OPPORTUNITIES PARTNERS II L.P.; CRG ISSUER 2015-1
To: VIEWRAY, INC.; VIEWRAY TECHNOLOGIES, INC. (F/K/A VIEWRAY INCORPORATED)
Reel/Frame 047990/0423 →
CHANGE OF NAME Recorded Jul 13, 2016
From: VIEWRAY INCORPORATED
To: VIEWRAY TECHNOLOGIES, INC.
Reel/Frame 039336/0688 →
SHORT-FORM PATENT SECURITY AGREEMENT Recorded Jun 26, 2015
From: VIEWRAY INCORPORATED
To: CAPITAL ROYALTY PARTNERS II L.P.; CAPITAL ROYALTY PARTNERS II - PARALLEL FUND "A" L.P.; CAPITAL ROYALTY PARTNERS II (CAYMAN) L.P.; PARALLEL INVESTMENT OPPORTUNITIES PARTNERS II L.P.
Reel/Frame 036020/0331 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 11, 2015
From: SHVARTSMAN, SHMARYU M.; DEMEESTER, GORDON D.; PATRICK, JOHN L.; DEMPSEY, JAMES F.
To: VIEWRAY INCORPORATED
Reel/Frame 034933/0615 →
Continuity (3)
Continuation 12951976 · Nov 22, 2010
Provisional Application 61263280 · Nov 20, 2009
Related Publication 20150077118A1 · Mar 19, 2015
Cited By (1)
US 12,420,115