IP Library Granted Patent US 9,697,936
Granted Patent B2
US 9,697,936 · App. 13/847,595 · Granted Jul 4, 2017

Material for use in a magnetic resonance installation, method for manufacturing said material, and magnetic resonance installation

Inventor: Stephan Biber (Erlangen, DE)
Assignee: SIEMENS AKTIENGESELLSCHAFT
H01F1/01G01R33/34G01R33/565G01R33/56536H01F1/0018A61B5/0555G01R33/34007
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Quick Facts
Patent No.
US 9,697,936
App. No.
13/847,595
Granted
Jul 4, 2017
Kind
B2
Abstract

A material for a magnetic resonance installation is provided, wherein the material includes a support material and a magnetic doping material which is admixed in a specific proportion. The doping material exhibits an anisotropic susceptibility. In respect of the anisotropic susceptibility, the doping material exhibits a mean orientation along a predefined direction. An essentially homogeneous intermixture of the support material and the doping material is present within a volume of the material which is smaller than 1 mm 3 .

Claims (40)

1. A material for use in a magnetic resonance installation, the material comprising:

a support material; and

a magnetic doping material which is admixed in a specific proportion with the support material for manufacturing the material for use in the magnetic resonance installation,

wherein the doping material exhibits an anisotropic susceptibility,

wherein the doping material exhibits a mean orientation along a predefined direction with respect to the anisotropic susceptibility, and

wherein an essentially homogeneous intermixture of the support material and the doping material is present within a volume of the material which is smaller than 1 mm 3 corresponding to a magnetic resonance imaging volume of the magnetic resonance installation, and

wherein the material exhibits a macroscopic magnetic susceptibility which is essentially equal to a susceptibility of water or tissue or organic material or air.

2. The material as claimed in claim 1 , wherein the doping material exhibits the mean orientation within the volume of the material.

3. The material as claimed in claim 1 , wherein the mean orientation and/or a standard deviation of the mean orientation exhibits a location dependency, and wherein the location dependency has a characteristic length of less than 1 mm.

4. The material as claimed in claim 1 , wherein the mean orientation results in a maximized susceptibility along the predetermined direction.

5. The material as claimed in claim 1 , wherein a standard deviation of the mean orientation is less than 45°.

6. The material as claimed in claim 1 , wherein a grain size of the doping material is smaller than 200 μm.

7. The material as claimed in claim 1 , wherein the specific proportion of the magnetic doping material admixed in the support material lies in the range of 0.1%-80%.

8. The material as claimed in claim 1 , wherein the support material is selected from the group consisting of thermoplastics, thermoplastic elastomers, elastomers, duroplastics, foams, acrylonitrile butadiene styrole (ABS) plastic, and a combination thereof.

9. The material as claimed in claim 1 , wherein the doping material is selected from

a first group of diamagnetic materials consisting of graphite, carbon nanotubes, bismuth, and a combination thereof; or

a second group of paramagnetic materials consisting of platinum, chromium, tungsten, ferritin, and a combination thereof.

10. The material as claimed in claim 1 , wherein the material exhibits a macroscopic magnetic susceptibility which is not equal to at least a susceptibility of water and tissue and organic material and air.

11. The material as claimed in claim 1 , wherein the material has a T2*-relaxation time of nuclear spins in the volume, which is less by a factor of 2 than the corresponding T2*-relaxation time of the support material.

12. The material as claimed in claim 1 ,

wherein the material comprises a further magnetic doping material which is admixed in a further proportion,

wherein an operational sign of a susceptibility of the further doping material differs from an operational sign of a susceptibility of the doping material, and

wherein an essentially homogeneous intermixture of the support material and the doping material and the further doping material is present within the volume.

13. The material as claimed in claim 12 , wherein the further doping material exhibits an anisotropic susceptibility, and wherein the further doping material exhibits a mean orientation along the predetermined direction in respect of the anisotropic susceptibility.

14. The material as claimed in claim 13 , wherein a standard deviation of the mean orientation of the doping material and a standard deviation of the mean orientation of the further doping material are different.

15. A method of manufacturing a material for use in a magnetic resonance installation, the method comprising:

fusing a support material, which is made of plastic, by an extruder,

admixing a proportion of a magnetic doping material with the support material for manufacturing the material for use in the magnetic resonance installation, wherein the doping material exhibits an anisotropic susceptibility, and wherein an admixture is effected such that a homogeneous intermixture of the support material with the doping material is present within a volume of less than 1 mm 3 corresponding to a magnetic resonance imaging volume of the magnetic resonance installation, and

applying a magnetic field to the mixed material along a predetermined direction, such that the doping material exhibits a mean orientation along the predetermined direction in respect of the anisotropic susceptibility.

16. The method as claimed in claim 15 ,

wherein the magnetic field is applied with a location dependency with respect to an orientation and/or strength such that the mean orientation and/or a standard deviation of the orientation exhibits the location dependency,

wherein the location dependency has a characteristic length of less than 1 mm.

17. A magnetic resonance installation having a sensitive region, wherein the magnetic resonance installation is configured as to capture magnetic resonance data within the sensitive region for the purpose of imaging, wherein the magnetic resonance installation comprising:

components within the sensitive region for the purpose of imaging,

wherein the components comprise a material comprising a support material and a magnetic doping material which is admixed in a proportion with the support material,

wherein the doping material exhibits an anisotropic susceptibility,

wherein the doping material exhibits a mean orientation along a predefined direction with respect to the anisotropic susceptibility,

wherein an essentially homogeneous intermixture of the support material and the doping material is present within a volume of the material which is smaller than 1 mm 3 corresponding to a magnetic resonance imaging volume of the magnetic resonance installation, and

wherein the material exhibits a macroscopic magnetic susceptibility which is essentially equal to a susceptibility of water or tissue or organic material or air.

18. The magnetic resonance installation as claimed in claim 17 , wherein the components are arranged such that the predetermined direction is essentially parallel with a basic magnetic field of the magnetic resonance installation.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 26, 2017
From: SIEMENS AKTIENGESELLSCHAFT
To: SIEMENS HEALTHCARE GMBH
Reel/Frame 043692/0864 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 29, 2013
From: BIBER, STEPHAN
To: SIEMENS AKTIENGESELLSCHAFT
Reel/Frame 030115/0645 →
Priority Claims (1)
DE 10 2012 204 567 · Mar 22, 2012 · national
Continuity (1)
Related Publication 20130249556A1 · Sep 26, 2013