IP Library Granted Patent US 9,182,461
Granted Patent B2
US 9,182,461 · App. 13/652,780 · Granted Nov 10, 2015

High resolution high contrast MRI for flowing media

Inventor: Uri Rapoport (Moshav Ben Shemen, IL)
Assignee: ASPECT IMAGING LTD.
G01R33/32G01R33/445G01R33/56G01N24/084
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Quick Facts
Patent No.
US 9,182,461
App. No.
13/652,780
Granted
Nov 10, 2015
Kind
B2
Abstract

An MRI device for providing high-contrast, high-resolution images of a fluid. The device includes: an envelope for at least partially confining the fluid; a plurality of magnets located at least partially around the envelope; and a CPU to process the images, including a computer readable medium containing instructions for generating at least one third image superimposing at least one image of the first images with at least one image of the second images, whereby a high-contrast, high-resolution real-time continuous images of the fluid is obtained.

Claims (44)

1. An MRI based method for providing high contrast high resolution images of a fluid, comprising:

a. providing an envelope for least partially confining said fluid;

b. providing a plurality of magnets located at least partially around said envelope, said assembly comprising

i. a least one first magnet configured to provide a high magnetic field for generating multiple time-resolved one or more first images at high resolution of at least a portion of said fluid; and

ii. a least one second magnet configured to provide a low magnetic field for generating multiple time-resolved one or more second images at high contrast of at least portion of same said fluid; wherein at least one image of said first images and at least one image of said second images being generated in a time no greater than approximately the time between two first images;

c. providing a CPU to process said images comprising a computer readable medium containing instructions for generating at least one third image superimposing at least one image of said first images with at least one image of said second images;

d. generating multiple time resolved one or more first images at high resolution of at least a portion of said fluid;

e. generating multiple time resolved one or more second images at high contrast of at least portion of same said fluid; and

f. superimposing at least one image of said first images with at least one image of said second images

whereby a high-contrast, high resolution real-time continuous image of said fluid is obtained.

2. The MRI based method of claim 1 , comprising an additional step of selecting said at least one first magnet to be of 2 Tesla and lower.

3. The MRI based method of claim 1 , comprising an additional step of selecting said at least one first magnet to be of 2 Tesla and higher.

4. The MRI based method of claim 1 , comprising an additional step of selecting said at least one first magnet from a group consisting of permanent magnets, electromagnets, superconducting magnets, and any combination thereof.

5. The MRI based method of claim 1 , comprising an additional step of selecting said at least one second magnet to be of 2 Tesla and lower.

6. The MRI based method of claim 1 , comprising an additional step of selecting said at least one second magnet to be of 2 Tesla and higher.

7. The MRI based method of claim 1 , comprising an additional step of selecting said at least one second magnet from a group consisting of permanent magnets, electromagnets, superconducting magnets, and any combination thereof.

8. The MRI based method of claim 1 , wherein a single RF coil is used for generating said one or more first images and said one or more second images.

9. The MRI based method of claim 1 , comprising an additional step of having the angle between a perpendicular to the direction of flow and said high magnetic field not the same as the angle between said perpendicular to the direction of flow and said low magnetic field.

10. The MRI based method of claim 1 , comprising an additional step of selecting an integrated MRI device comprising both said high magnetic field magnets and said low magnetic field magnets.

11. The MRI based method of claim 1 , comprising an additional step of selecting said MRI device comprising two MRI devices, one providing the high magnetic field magnets and one providing the low magnetic field magnets.

12. The MRI based method of claim 1 , comprising an additional step of selecting a duty cycle for said high magnetic field magnets greater than approximately 50% and a duty cycle for said low magnetic fields magnets less than approximately 50%.

13. The MRI based method of claim 1 , comprising an additional step of selecting said envelope from a group consisting of a pipe, a duct, a tunnel, a conduit, a tube, a conveyor, a channel, a passage, and any combination thereof.

14. The MRI based method of claim 1 , comprising an additional step of forming said envelope as an integral part of at least one MRI device.

15. The MRI based method of claim 1 , comprising an additional step of selecting said fluid from a group consisting of a liquid, a gas, a slurry, a liquid containing particulates, a gas containing particulates, a gel, a sol, a suspension, a solution, a dispersion, a colloid, a mixture, an emulsion, an aerosol, a liquid containing solid objects, a gas containing solid objects, and any combination thereof.

16. The MRI based method of claim 1 , comprising an additional step of providing said fluid within the fluid process stream in a production process.

17. The MRI based method of claim 16 , comprising an additional step of selecting said production process in an industrial area, said industrial area a member of a group consisting of the pharmaceuticals, food production, beverage production, chemical refining, chemical processing, medical products, biological products, metal casting, metal refining, desalination, fluid purification, and sewage processing.

18. The MRI based method of claim 17 , comprising an additional step of selecting water as the fluid purified in said fluid purification.

19. The MRI based method of claim 16 , further comprising integrating said method into a production system.

20. The MRI based method of claim 1 , comprising an additional step of providing said fluid within a bypass stream from a production line.

21. The MRI based method of claim 1 , comprising an additional step of providing said fluid in the fluid process stream within a batch process.

22. The MRI based method of claim 1 , comprising an additional step of providing said fluid within an engine or combustion chamber.

23. The MRI based method of claim 1 , comprising an additional step of providing said fluid as the effluent from said engine or combustion chamber.

24. The MRI based method of claim 1 , comprising an additional step of providing said fluid as some fraction of the effluent from said engine or combustion chamber.

25. The MRI based method of claim 1 , comprising an additional step of selecting a fluid used in fertility treatments.

26. The MRI based method of claim 1 , comprising an additional step of selecting a fluid used for artificial insemination.

27. The MRI based method of claim 1 , comprising an additional step of selecting a fluid containing liposomes.

28. The MRI based method of claim 1 , comprising an additional step of selecting a fluid which is part of an air curtain.

29. The MRI based method of claim 1 , comprising an additional step of selecting a fluid which is a polymeric melt.

30. The MRI based method of claim 29 , comprising an additional step of selecting said polymeric melt from a group consisting of rubbers, polyesters, polyamides, polypropylenes, polyethylenes, polyurethanes, and any combination thereof.

31. The MRI based method of claim 1 , comprising an additional step of selecting a fluid within the body of a living subject as said flowing matter.

32. The MRI based method of claim 31 , comprising an additional step of passing said fluid from the body of a living subject, through said envelope, and returning it to said living subject.

33. The MRI based method of claim 1 , wherein said step of superimposing comprises using Boolean operators for correlating or combining said at least one image of said first images and said at least one image of said second images.

34. The MRI based method of claim 33 , wherein said Boolean operators are selected from the group consisting of OR, AND, NOT, EXCLUSIVE OR and any combination thereof.

35. The MRI-based method of claim 1 , comprising an additional step of selecting the fluid from a group consisting of potable water, sewage, irrigation water, sea water, river water, lake water, industrial effluent, farm effluent, effluent from human habitation, road runoff, blood, lymph, a beverage, cleaning fluid, and any combination thereof.

Assignments (2)
SECURITY AGREEMENT Recorded Feb 20, 2013
From: ASPECT IMAGING LTD.
To: ROLL HOLDINGS LLC; AMOS AND DAUGHTERS INVESTMENTS AND PROPERTIES LTD.
Reel/Frame 029844/0201 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 31, 2012
From: RAPOPORT, URI
To: ASPECT IMAGING LTD.
Reel/Frame 029214/0752 →
Continuity (3)
Provisional Application 61656041 · Jun 6, 2012
Provisional Application 61661897 · Jun 20, 2012
Related Publication 20130328559A1 · Dec 12, 2013