IP Library Granted Patent US 9,927,506
Granted Patent B2
US 9,927,506 · App. 14/151,566 · Granted Mar 27, 2018

Transmit antenna selector and magnetic resonance imaging system

Inventors: Hong Cheng (Shenzhen, CN); Stefan Pott (Nürnberg, DE); JianMin Wang (Shenzhen, CN); Lan Wang (Shenzhen, CN)
Assignee: Siemens Aktiengesellschaft
G01R33/3664
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Quick Facts
Patent No.
US 9,927,506
App. No.
14/151,566
Granted
Mar 27, 2018
Kind
B2
Abstract

A transmit antenna selector includes a control circuit, a body coil signal output interface, a local coil signal output interface, a radio-frequency signal input interface, and a dummy load. The control circuit includes a plurality of diodes. The control circuit electrically connects, according to a control signal and via the plurality of diodes, the radio-frequency signal input interface with the body coil signal output interface, with the local coil signal output interface, or with the dummy load.

Claims (91)

1. A transmit antenna selector comprising:

a control circuit;

a body coil signal output interface;

a local coil signal output interface;

a radio-frequency signal input interface; and

a dummy load;

wherein the control circuit comprises a plurality of diodes,

wherein the control circuit electrically connects the radio-frequency signal input interface with the body coil signal output interface, with the local coil signal output interface, or with the dummy load, according to a control signal and via the plurality of diodes,

wherein the plurality of diodes comprises a first diode, a second diode and a third diode;

wherein anodes of the first diode, the second diode and the third diode are connected to the radio-frequency signal input interface;

wherein a cathode of the first diode is connected to the local coil signal output interface;

wherein a cathode of the second diode is connected to the body coil signal output interface; and

wherein a cathode of the third diode is connected to the dummy load.

2. The transmit antenna selector of claim 1 , further comprising:

a body coil signal input interface, wherein, when the radio-frequency signal input interface is electrically connected with the body coil signal output interface, the control circuit electrically connects the body coil signal input interface with the dummy load in accordance with a control signal and via the plurality of diodes.

3. The transmit antenna selector of claim 2 , wherein:

the plurality of diodes further comprises a fourth diode; and

a cathode of the fourth diode is connected to the body coil signal input interface.

4. The transmit antenna selector of claim 3 , further comprising:

a first inductor between the anode of the first diode and the radio-frequency signal input interface to effect the phase difference therebetween; and

a second inductor between the dummy load and an anode of the fourth diode to effect the phase difference therebetween.

5. The transmit antenna selector of claim 1 , wherein the control circuit further comprises:

a plurality of protection circuits, each protection circuit of the plurality of protection circuits being connected in parallel to a respective diode of the plurality of diodes;

wherein each protection circuit of the plurality of protection circuits comprises a capacitor and an inductor connected to the capacitor in series.

6. A transmit antenna selector comprising:

a control circuit;

a body coil signal output interface;

a local coil signal output interface;

a radio-frequency signal input interface; and

a dummy load;

wherein the control circuit comprises a plurality of diodes,

wherein the control circuit electrically connects the radio-frequency signal input interface with the body coil signal output interface, with the local coil signal output interface, or with the dummy load, according to a control signal and via the plurality of diodes,

wherein the plurality of diodes comprises a first diode, a second diode and a third diode;

wherein an anode of the first diode is connected to the radio-frequency signal input interface;

wherein an anode of the second diode is connected to the radio-frequency signal input interface;

wherein a cathode of the second diode is connected to the body coil signal output interface;

wherein an anode of the third diode is connected to the radio-frequency signal input interface;

wherein a phase difference of an odd number of multiples of a quarter wavelength is present between the radio-frequency signal input interface and the anode of the first diode; and

wherein a phase difference of an odd number of multiples of a quarter wavelength is present between the radio-frequency signal input interface and the anode of the third diode.

7. The transmit antenna selector of claim 6 , further comprising:

a first inductor between the radio-frequency signal input interface and the anode of the first diode to effect the phase difference therebetween; and

a second inductor between the radio-frequency signal input interface and the anode of the third diode to effect the phase difference therebetween.

8. The transmit antenna selector of claim 6 , further comprising:

a body coil signal input interface, wherein, when the radio-frequency signal input interface is electrically connected with the body coil signal output interface, the control circuit electrically connects the body coil signal input interface with the dummy load in accordance with a control signal and via the plurality of diodes.

9. The transmit antenna selector of claim 6 , wherein the control circuit further comprises:

a plurality of protection circuits, each protection circuit of the plurality of protection circuits being connected in parallel to a respective diode of the plurality of diodes;

wherein each protection circuit of the plurality of protection circuits comprises a capacitor and an inductor connected to the capacitor in series.

10. A magnetic resonance imaging system comprising:

a transmit antenna selector comprising:

a control circuit;

a body coil signal output interface;

a local coil signal output interface;

a radio-frequency signal input interface; and

a dummy load;

wherein the control circuit comprises a plurality of diodes,

wherein the control circuit electrically connects the radio-frequency signal input interface with the body coil signal output interface, with the local coil signal output interface, or with the dummy load, according to a control signal and via the plurality of diodes,

wherein the plurality of diodes comprises a first diode, a second diode and a third diode;

anodes of the first diode, the second diode and the third diode are connected to the radio-frequency signal input interface;

a cathode of the first diode is connected to the local coil signal output interface;

a cathode of the second diode is connected to the body coil signal output interface; and

a cathode of the third diode is connected to the dummy load.

11. The magnetic resonance imaging system of claim 10 , wherein the transmit antenna selector further comprises a body coil signal input interface, wherein, when the radio-frequency signal input interface is electrically connected with the body coil signal output interface, the control circuit electrically connects the body coil signal input interface with the dummy load in accordance with a control signal and via the plurality of diodes.

12. The magnetic resonance imaging system of claim 11 , wherein:

the plurality of diodes further comprises a fourth diode; and

a cathode of the fourth diode is connected to the body coil signal input interface.

13. The magnetic resonance imaging system of claim 12 , wherein the transmit antenna selector further comprises:

a first inductor between the anode of the first diode and the radio-frequency signal input interface to effect the phase difference therebetween; and

a second inductor between the dummy load and an anode of the fourth diode to effect the phase difference therebetween.

14. The magnetic resonance imaging system of claim 10 , wherein the control circuit further comprises:

a plurality of protection circuits, each protection circuit of the plurality of protection circuits being connected in parallel to a respective diode of the plurality of diodes;

wherein each protection circuit of the plurality of protection circuits comprises a capacitor and an inductor connected to the capacitor in series.

15. A magnetic resonance imaging system comprising:

a transmit antenna selector comprising:

a control circuit;

a body coil signal output interface;

a local coil signal output interface;

a radio-frequency signal input interface; and

a dummy load;

wherein the control circuit comprises a plurality of diodes,

wherein the control circuit electrically connects the radio-frequency signal input interface with the body coil signal output interface, with the local coil signal output interface, or with the dummy load, according to a control signal and via the plurality of diodes,

wherein the plurality of diodes comprises a first diode, a second diode and a third diode;

wherein an anode of the first diode is connected to the radio-frequency signal input interface;

wherein an anode of the second diode is connected to the radio-frequency signal input interface;

wherein a cathode of the second diode is connected to the body coil signal output interface;

wherein an anode of the third diode is connected to the radio-frequency signal input interface;

wherein a phase difference of an odd number of multiples of a quarter wavelength is present between the radio-frequency signal input interface and the anode of the first diode; and

wherein a phase difference of an odd number of multiples of a quarter wavelength is present between the radio-frequency signal input interface and the anode of the third diode.

16. The magnetic resonance imaging system of claim 15 , wherein the transmit antenna selector further comprises:

a first inductor between the radio-frequency signal input interface and the anode of the first diode to effect the phase difference therebetween; and

a second inductor between the radio-frequency signal input interface and the anode of the third diode to effect the phase difference therebetween.

17. The magnetic resonance imaging system of claim 15 , wherein the transmit antenna selector further comprises a body coil signal input interface, wherein, when the radio-frequency signal input interface is electrically connected with the body coil signal output interface, the control circuit electrically connects the body coil signal input interface with the dummy load in accordance with a control signal and via the plurality of diodes.

Assignments (6)
CORRECTIVE ASSIGNMENT TO CORRECT THE ASSIGNEE PREVIOUSLY RECORDED AT REEL: 066088 FRAME: 0256. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Jan 17, 2024
From: SIEMENS HEALTHCARE GMBH
To: SIEMENS HEALTHINEERS AG
Reel/Frame 071178/0246 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 20, 2023
From: SIEMENS HEALTHCARE GMBH
To: SIEMENS HEALTHINEERS AG
Reel/Frame 066088/0256 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 15, 2018
From: SIEMENS AKTIENGESELLSCHAFT
To: SIEMENS HEALTHCARE GMBH
Reel/Frame 046380/0273 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 24, 2014
From: CHENG, HONG; WANG, JIAN MIN; WANG, LAN
To: SIEMENS SHENZHEN MAGNETIC RESONANCE LTD.
Reel/Frame 032508/0757 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 24, 2014
From: SIEMENS SHENZHEN MAGNETIC RESONANCE LTD.
To: SIEMENS AKTIENGESELLSCHAFT
Reel/Frame 032508/0774 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 24, 2014
From: POTT, STEFAN
To: SIEMENS AKTIENGESELLSCHAFT
Reel/Frame 032508/0794 →
Priority Claims (1)
CN 2013 1 0009092 · Jan 10, 2013 · national
Continuity (1)
Related Publication 20140191758A1 · Jul 10, 2014