IP Library › Granted Patent US 12,339,342
Granted Patent B2
US 12,339,342 · App. 18/206,664 · Granted Jun 24, 2025

Magnetic resonance system and corresponding method

Inventor: Stefan Popescu (Erlangen, DE)
Assignee: Siemens Healthineers AG
G01R33/56341G01R33/34084G01R33/383G01R33/385G01R33/543
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Quick Facts
Patent No.
US 12,339,342
App. No.
18/206,664
Granted
Jun 24, 2025
Kind
B2
Abstract

A magnetic resonance system configured to acquire magnetic resonance data of an object in an field-of-view, wherein the magnetic resonance system includes a magnet that is configured such that it creates a gradient field at the field-of-view; a controller configured to cause the magnetic resonance system to utilize the magnet's gradient field for diffusion weighted imaging or mixed contrast imaging; and a unit of one or several RF coils, wherein the RF coils are configured to acquire magnetic resonance data from the object and to support or flexibly attach to the patient body.

Claims (44)

1. A magnetic resonance system configured to acquire magnetic resonance data of an object in a field-of-view, wherein the magnetic resonance system comprises:

a magnet, that is configured such that it creates a gradient field, which is a static magnetic field having a gradient in its field strength at the field-of-view;

a unit of one or several radio frequency (RF) coils, wherein the unit is configured to generate RF pulses, to acquire magnetic resonance data from the object, and to carry a human patient's weight, the human patient comprising the object, and wherein the unit is suspended from a frame of the magnetic resonance system, and is a seat or is part of a seat which is adapted for the human patient to sit on it during a magnetic resonance examination; and

a controller configured to cause the magnetic resonance system to utilize the magnet's gradient field for diffusion weighted or T2-weighted nuclear magnetic resonance (NMR) measurements or for spatial encoding of the magnetic resonance data.

2. The magnetic resonance system according to claim 1 ,

wherein the field strength of the gradient field in the field-of-view decreases linearly with a spatial distance to the magnet, with a linearity better than 10%.

3. The magnetic resonance system according to claim 2 ,

wherein the field strength of the gradient field in the field-of-view decreases linearly with a spatial distance to the magnet, with a linearity better than 1%.

4. The magnetic resonance system according to claim 1 ,

wherein the magnetic resonance system comprises a displacement element configured to displace the magnet in two orthogonal directions.

5. The magnetic resonance system according to claim 4 ,

wherein the displacement element is configured to displace the magnet on a trajectory such that the gradient field remains at the field-of-view such that at least one portion of the gradient field remains at the same location when the magnet is displaced in any or both of the two orthogonal directions, and such that the direction of the gradient field changes when the magnet is displaced.

6. The magnetic resonance system according to claim 5 ,

wherein the trajectory of the magnet span an area that is bowl-shaped.

7. The magnetic resonance system according to claim 4 ,

wherein the system is configured to displace the magnet such that a plurality of gradient field directions are created during a session.

8. The magnetic resonance system according to claim 1 ,

wherein the field strength of the magnet is smaller than 1 Tesla at an area of the object to be examined.

9. The magnetic resonance system according to claim 8 ,

wherein the field strength of the magnet is smaller than 0.1 Tesla at an area of the object to be examined.

10. The magnetic resonance system according to claim 1 ,

wherein the system is configured to provide a magnetic resonance signal from at least one prostate biomarker or two magnetic resonance imaging contrasts that are T2-weighted and diffusion weighted contrasts.

11. The magnetic resonance system according to claim 1 , wherein:

the system comprises a camera,

the camera is configured to scan a patient's body, and

the system is configured to determine a position of the object to be examined based on the camera's scan.

12. A method for acquiring diffusion-weighted and T2-weighted magnetic resonance mixed-contrast data, of an object placed at a field-of-view, wherein using the magnetic resonance system according to claim 1 , the method comprises:

using a magnet to create a linear gradient field, at the field-of-view in order to create a diffusion contrast or to achieve a spatial encoding;

mechanically displacing the magnet to six different positions, in order to measure diffusion magnetic resonance signals in multiple nonparallel directions; and

acquiring magnetic resonance data via a unit of one or several RF coils.

13. The method according to claim 12 ,

wherein a position of the object is determined via a camera.

14. The method according to claim 13 ,

wherein patient anatomy is scanned by the camera before the patient is placed in the magnetic resonance system for an examination or when the patient approaches the magnetic resonance system.

15. A magnetic resonance system configured to acquire magnetic resonance data of an object in a field-of-view, wherein the magnetic resonance system comprises;

a magnet, which is configured such that it creates a gradient field, which is a static magnetic field having a gradient in its field strength at the field-of-view;

a unit of one or several radio frequency (RF) coils, wherein the RF coils are configured to generate RF pulses and to acquire magnetic resonance data from the object,

wherein the unit of RF one or several coils is flexible such that it can adapt to a geometry of a patient sitting on the unit of one or several RF coils; and

a controller configured to cause the magnetic resonance system to utilize the magnet's gradient field for diffusion weighted or T2-weighted nuclear magnetic resonance (NMR) measurements or for spatial encoding of the magnetic resonance data.

16. A unit of one or several RF coils, wherein:

the one or several RF coils are configured to generate RF pulses or to acquire magnetic resonance data from an object,

the unit is configured to carry a human patient's weight, the patient comprising the object,

the unit is suspended from a frame of a magnetic resonance system, and

the unit of one or several RF coils is a seat or is part of a seat which is adapted for a patient to sit on it during a magnetic resonance examination.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 9, 2025
From: POPESCU, STEFAN
To: SIEMENS HEALTHINEERS AG
Reel/Frame 070790/0604 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 20, 2023
From: SIEMENS HEALTHCARE GMBH
To: SIEMENS HEALTHINEERS AG
Reel/Frame 066267/0346 →
Priority Claims (1)
EP 22177656 · Jun 7, 2022 · regional
Continuity (1)
Related Publication 20230393224A1 · Dec 7, 2023
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