FLAT ADJUSTABLE CAPACITOR FOR MAGNETIC RESONANCE SCANNER
20190019620 · 2019-01-17
Inventors
- Ludwig Eberler (Neumarkt i.d.OPf, DE)
- Razvan Lazar (Erlangen, DE)
- Volker Matschl (Bamberg, DE)
- Jürgen Nistler (Erlangen, DE)
- Martin Schramm (Eckental, DE)
Cpc classification
H01G5/40
ELECTRICITY
H01F27/42
ELECTRICITY
G01R33/34084
PHYSICS
G01R33/34007
PHYSICS
International classification
H01F27/42
ELECTRICITY
H01G5/40
ELECTRICITY
G01R33/34
PHYSICS
Abstract
The disclosure relates to a compensation capacitor for an antenna of a magnetic resonance scanner and a corresponding antenna with a compensation capacitor. The compensation capacitor has a first electrode and a second electrode arranged in parallel. An insulation material configured to resist high voltages and a dielectric with low dielectric losses are arranged between the first and the second electrode. The second electrode and/or the dielectric may be moved relative to the first electrode such that a surface area of a projection of the surface of the first electrode along the surface normal of the first electrode to the surface of the second electrode and/or the dielectric is variable.
Claims
1. A compensation capacitor for an antenna of a magnetic resonance scanner, the compensation capacitor comprising: a first electrode; a second electrode, wherein the first electrode and the second electrode are arranged in parallel; an insulation material configured to resist high voltages arranged between the first electrode and the second electrode; and a dielectric with low dielectric losses arranged between the first electrode and the second electrode, wherein one or both of the second electrode and the dielectric are configured to move relative to the first electrode such that a surface area of a projection of a surface of the first electrode along a surface normal of the first electrode to one or both of a surface of the second electrode and a surface of the dielectric is variable.
2. The compensation capacitor of claim 1, wherein the antenna is a body coil.
3. The compensation capacitor of claim 1, further comprising: a third electrode, wherein the third electrode and the second electrode are arranged in parallel; an additional insulation material configured to resist high voltages arranged between the third electrode and the second electrode; and an additional dielectric with low dielectric losses arranged between the third electrode and the second electrode, wherein one or both of the second electrode and the additional dielectric are configured to move relative to the third electrode such that a surface area of a projection of a surface of the third electrode along a surface normal of the third electrode to one or both of the surface of the second electrode and a surface of the additional dielectric is variable, and wherein the first electrode and the third electrode are electrically insulated from each other.
4. The compensation capacitor of claim 3, wherein the first electrode and the third electrode have terminals for an electrical connection with the antenna.
5. The compensation capacitor of claim 4, wherein the first electrode and the third electrode are arranged side by side opposite a first surface of the second electrode.
6. The compensation capacitor of claim 5, wherein one or both of the first electrode and the third electrode partially surround the second electrode on a plurality of sides.
7. The compensation capacitor of claim 3, wherein the first electrode and the third electrode are arranged side by side opposite a first surface of the second electrode.
8. The compensation capacitor of claim 3, wherein one or both of the first electrode and the third electrode partially surround the second electrode on a plurality of sides.
9. The compensation capacitor of claim 3, wherein the first electrode and the third electrode are arranged opposite each other on opposing first and second surfaces of the second electrode.
10. The compensation capacitor of claim 3, further comprising: an adjustment device configured to arrange one or both of the second electrode and the dielectric in a variable predetermined relative position to the first electrode.
11. The compensation capacitor of claim 10, wherein the adjustment device is configured to move the second electrode along an axis parallel to the first surface of the second electrode.
12. The compensation capacitor of claim 10, further comprising: a clamping device configured to press the first electrode, the second electrode, the insulation material, and the dielectric against each other.
13. The compensation capacitor of claim 3, further comprising: a clamping device configured to press the first electrode, the second electrode, the insulation material, and the dielectric against each other.
14. The compensation capacitor of claim 1, further comprising: an adjustment device configured to arrange one or both of the second electrode and the dielectric in a variable predetermined relative position to the first electrode.
15. The compensation capacitor of claim 14, wherein the adjustment device is configured to move the second electrode along an axis parallel to the first surface of the second electrode.
16. The compensation capacitor of claim 14, further comprising: a clamping device configured to press the first electrode, the second electrode, the insulation material, and the dielectric against each other.
17. The compensation capacitor of claim 1, further comprising: a clamping device configured to press the first electrode, the second electrode, the insulation material, and the dielectric against each other.
18. An antenna for a magnetic resonance scanner, the antenna comprising: a compensation capacitor having: a first electrode; a second electrode, wherein the first electrode and the second electrode are arranged in parallel; and an insulation material configured to resist high voltages arranged between the first electrode and the second electrode; and a dielectric with low dielectric losses arranged between the first electrode and the second electrode, wherein one or both of the second electrode and the dielectric are configured to move relative to the first electrode such that a surface area of a projection of a surface of the first electrode along a surface normal of the first electrode to one or both of a surface of the second electrode and a surface of the dielectric is variable.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0033] The aforementioned properties, features, and advantages of the disclosure and the manner in which they are achieved become clearer and more readily understandable in connection with the following description of the exemplary embodiments which are explained in more detail with reference to the figures.
[0034]
[0035]
[0036]
[0037]
[0038]
DETAILED DESCRIPTION
[0039]
[0040]
[0041] A first electrode 51 and a third electrode 53 are arranged in the interruption between the segments of the ring 12, wherein each electrode is electrically connected to another ring segment 12. The connection may be extensive and have low inductance and resistance to improve the quality of the antenna 10. It is even conceivable that the first electrode 51 and/or the third electrode 53 are designed in one piece with the ring segments 12. The first electrode 51 and the third electrode 53 are separated by an insulator 54 and/or an air gap to avoid a flashover with the high outputs applied to the antenna 10.
[0042] In
[0043]
[0044] The embodiment of
[0045]
[0046]
[0047] A third electrode 53 is not provided in the embodiment of
[0048] It is also conceivable, however, to arrange the clamping device 56 on the embodiments of
[0049] It is to be understood that the elements and features recited in the appended claims may be combined in different ways to produce new claims that likewise fall within the scope of the present disclosure. Thus, whereas the dependent claims appended below depend from only a single independent or dependent claim, it is to be understood that these dependent claims may, alternatively, be made to depend in the alternative from any preceding or following claim, whether independent or dependent, and that such new combinations are to be understood as forming a part of the present specification.
[0050] While the present disclosure has been described above by reference to various embodiments, it may be understood that many changes and modifications may be made to the described embodiments. It is therefore intended that the foregoing description be regarded as illustrative rather than limiting, and that it be understood that all equivalents and/or combinations of embodiments are intended to be included in this description.