IP Library Granted Patent US 11,378,629
Granted Patent B2
US 11,378,629 · App. 15/630,890 · Granted Jul 5, 2022

Magnetic resonance imaging

Inventor: James F. Dempsey (Atherton, CA)
Assignee: VIEWRAY TECHNOLOGIES, INC.
G01R33/0023A61B5/055A61N5/1049G01R33/0017G01R33/287G01R33/385G01R33/3815G01R33/48A61N2005/1055G01R33/381G01R33/3806G01R33/4808G01R33/4835G01R33/56325G01R33/56527G01R33/56536
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Quick Facts
Patent No.
US 11,378,629
App. No.
15/630,890
Granted
Jul 5, 2022
Kind
B2
Abstract

Improved magnetic resonance imaging systems, methods and software are described including a low field strength main magnet, a gradient coil assembly, an RF coil system, and a control system configured for the acquisition and processing of magnetic resonance imaging data from a patient while utilizing a sparse sampling imaging technique.

Claims (44)

1. A magnetic resonance imaging system (MRI) comprising:

a main magnet having a field strength less than 1.0 Tesla;

a gradient coil assembly;

an RF coil system; and

a control system configured for acquisition and processing of magnetic resonance imaging data from a human patient and configured to utilize a sparse sampling imaging technique without parallel imaging and to utilize an RF bandwidth to maintain artifacts due to chemical shift and magnetic susceptibility below one half of a millimeter.

2. The magnetic resonance imaging system of claim 1 wherein the gradient field strengths are below 20 mT/m.

3. The magnetic resonance imaging system of claim 1 wherein the flip angles are greater than 40 degrees.

4. The magnetic resonance imaging system of claim 1 wherein the control system is configured for the RF bandwidth to be less than 1800 Hz.

5. The magnetic resonance imaging system of claim 1 wherein the field strength of the main magnet is approximately 0.35 Tesla.

6. The magnetic resonance imaging system of claim 1 wherein the control system is configured to employ pulse sequences that do not require dephasing pulses.

7. The magnetic resonance imaging system of claim 1 wherein the control system is configured to utilize a gradient slew rate above 75 mT/m/ms.

8. The magnetic resonance imaging system of claim 1 wherein the control system is configured to employ simultaneous multiple slice imaging techniques.

9. The magnetic resonance imaging system of claim 1 wherein the control system is further configured to produce cine MRI.

10. The magnetic resonance imaging system of claim 9 wherein the control system is further configured to acquire magnetic resonance imaging data at a rate enabling cine MRI of at least 4 frames per second.

11. The magnetic resonance imaging system of claim 1 wherein the main magnet is a split magnet.

12. The magnetic resonance imaging system of claim 11 wherein the gradient coil assembly is a split gradient coil assembly.

13. The magnetic resonance imaging system of claim 12 further configured to allow for surgical intervention in the gap of the split magnet.

14. The magnetic resonance imaging system of claim 13 further including a robotic surgical device integrated with the system.

15. The magnetic resonance imaging system of claim 11 further comprising a radiation therapy device integrated with the system, the radiation therapy device configured for radiation treatment of the human patient.

16. The magnetic resonance imaging system of claim 15 wherein the control system is further configured to utilize the cine MRI to track locations of tissues in the human patient.

17. The magnetic resonance imaging system of claim 15 wherein the radiation therapy device is a linear accelerator.

18. The magnetic resonance imaging system of claim 17 wherein the linear accelerator has an energy in the range of 4-6MV.

19. The magnetic resonance imaging system of claim 15 wherein the radiation therapy device is selected from the group consisting of a proton therapy system, heavy ion therapy system and a radioisotope therapy system.

20. The magnetic resonance imaging system of claim 15 wherein the main magnet is a non-superconducting magnet.

21. The magnetic resonance imaging system of claim 1 wherein the main magnet is a superconducting magnet.

22. The magnetic resonance imaging system of claim 1 wherein the main magnet is a resistive magnet.

23. The magnetic resonance imaging system of claim 22 wherein the main magnet is powered by a battery system.

24. The magnetic resonance imaging system of claim 1 , wherein the RF coil system does not include a surface coil.

25. A computer program product comprising a non-transient, machine-readable medium storing instructions which, when executed by at least one programmable processor, cause the at least one programmable processor to perform operations comprising:

acquiring magnetic resonance imaging data from a human patient through a magnetic resonance imaging system (MRI) having a main magnet with a field strength less than 1.0 Tesla, a gradient coil assembly and an RF coil system, the acquiring utilizing a sparse sampling imaging technique without parallel imaging and utilizing an RF bandwidth to maintain artifacts due to chemical shift and magnetic susceptibility below one half of a millimeter; and

processing the magnetic resonance imaging data, the processing including reconstructing images of the human patient.

26. The computer program product of claim 25 wherein the acquiring utilizes gradient field strengths that are below 20 mT/m.

27. The computer program product of claim 25 wherein the acquiring utilizes flip angles that are greater than 40 degrees.

28. The computer program product of claim 25 wherein the RF bandwidth is less than 1800 Hz.

29. The computer program product of claim 25 wherein the acquiring utilizes a field strength of the main magnet being approximately 0.35 Tesla.

30. The computer program product of claim 25 wherein the acquiring employs pulse sequences that do not require dephasing pulses.

31. The computer program product of claim 25 wherein the acquiring utilizes a gradient slew rate above 75 mT/m/ms.

32. The computer program product of claim 25 wherein the acquiring utilizes simultaneous multiple slice imaging techniques.

33. The computer program product of claim 25 wherein the processing and reconstructing includes the producing of cine MRI.

34. The computer program product of claim 33 wherein the producing of cine MRI includes at least 4 frames per second.

35. The computer program product of claim 25 , the operations further comprising controlling a radiation therapy device integrated with the MRI system to administer radiation therapy to the human patient.

36. The computer program product of claim 35 , the operations further comprising utilizing the magnetic resonance imaging data to track locations of tissues in the human patient.

37. The computer program product of claim 35 , the operations further comprising altering the administering of radiation therapy by the radiation therapy device based on the tracking of the location of tissues in the human patient.

38. The computer program product of claim 25 , the operations further comprising utilizing the magnetic resonance imaging data to monitor a surgical intervention.

Assignments (3)
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 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 7, 2017
From: DEMPSEY, JAMES F.
To: VIEWRAY TECHNOLOGIES, INC.
Reel/Frame 043221/0104 →
Continuity (2)
Provisional Application 62353538 · Jun 22, 2016
Related Publication 20170371001A1 · Dec 28, 2017
Cited By (2)
US 12,429,532 US 12,433,502