Method and apparatus for generating a magnetic resonance image using combined excitation by a whole body coil and a local coil
US-2015338488-A1 · Nov 26, 2015 · US
US9157972B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9157972-B2 |
| Application number | US-201213586122-A |
| Country | US |
| Kind code | B2 |
| Filing date | Aug 15, 2012 |
| Priority date | Jun 1, 2010 |
| Publication date | Oct 13, 2015 |
| Grant date | Oct 13, 2015 |
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An electrically-controlled failsafe switch is included in an MRI transmit-and-receive RF coil assembly so as to protect it from induced RF currents in the event it is disconnected from an MRI system, but inadvertently left linked to strong MRI RF fields during imaging procedures using other RF coils.
Opening claim text (preview).
What is claimed is: 1. An RF coil assembly which is connectable to a Magnetic Resonance Imaging (MRI) system and has RF transmit capability, the RF coil assembly comprising: at least one RF coil circuit configured for removable connection to an MRI system; and a protection circuit electrically connected to said RF coil circuit and having at least one electrically variable impedance configured to automatically protect, when the RF coil assembly is in a state of being unconnected from the MRI system, the RF coil assembly from an RF magnetic field transmitted from another RF coil assembly, wherein the variable impedance comprises a parallel LC circuit and a pair of back-to-back connected diodes having an impedance controllable by a DC bias voltage supplied by the MRI system and applied to the diodes via the parallel LC circuit, wherein when the RF coil assembly is in a state of being unconnected from the MRI system and no DC bias voltage is applied to the diodes, the parallel LC circuit is resonant at an RF operating frequency of the MRI system to provide an impedance to substantially impede a flow of current induced in the at least one RF coil circuit by the RF magnetic field transmitted from the other RF coil assembly, and wherein when the RF coil assembly is in a state of being connected to the MRI system and the DC bias voltage is applied to the diodes, the parallel LC circuit is detuned at the RF operating frequency to provide a lowered non-resonant impedance to permit substantially unimpeded flow of RF imaging currents in the at least one RF coil circuit. 2. The RF coil assembly according to claim 1 , wherein the protection circuit is configured to protect the RF coil assembly from an induced RF current generated by the RF magnetic field. 3. The RF coil assembly according to claim 1 , wherein the RF coil assembly in the state of being unconnected is a transmit/receive (T/R) coil. 4. The RF coil assembly according to claim 1 , wherein the another RF coil assembly is a built-in fixed RF coil assembly included in a gantry of the MRI system. 5. The RF coil assembly according to claim 3 , wherein the RF coil assembly in the state of being unconnected includes a plurality of coil elements; and the protection circuit is electrically coupled to each of the plurality of coil elements. 6. The RF coil assembly according to claim 1 , wherein the RF coil assembly in the state of being unconnected is configured to permit an RF current to flow within a coil element of said RF coil circuit when the RF coil assembly is in a state of being connected to the MRI system, and to reduce an RF current flow within the coil element when the RF coil assembly is in a state of being unconnected to the MRI system. 7. The RF coil assembly according to claim 6 , wherein the MRI system includes a receive amplifier which amplifies an RF signal received by the coil element and the protection circuit is electrically coupled between the coil element and the receive amplifier. 8. The RF coil assembly according to claim 6 , further comprising a phase shifter which shifts a phase of an RF signal received by the coil element and wherein said protection circuit is electrically coupled between the coil element and the phase shifter. 9. The RF coil assembly according to claim 5 , further comprising a combiner which combines RF signals received by the coil elements and wherein said protection circuit is electrically coupled between the plurality of coil elements and said combiner. 10. The RF coil assembly according to claim 3 , wherein the T/R switch switches a state of the T/R coil between transmitting and receiving and said protection circuit is electrically coupled between the coil element and said T/R switch. 11. The RF coil assembly according to claim 1 , wherein the RF coil assembly in the state of being unconnected is a T/R coil; and the protection circuit is configured to enable, when the RF coil assembly is in a state of being connected to the MRI system, the RF coil assembly to transmit an RF magnetic field, and to protect, when the RF coil assembly is in the state of being unconnected from the MRI system, the RF coil assembly from the RF magnetic field transmitted from the another RF coil assembly. 12. An RF coil assembly which is connectable to a MRI system and has RF transmit capability, the RF coil assembly comprising: at least one RF coil circuit configured for removable connection to an MRI system; and a protection circuit electrically connected to said RF coil element and having at least one electrically variable impedance configured to automatically protect, when the RF coil assembly is in a state of being unconnected from the MRI system, the RF coil assembly from an RF magnetic field transmitted from another RF coil assembly, wherein the variable impedance comprises: a first diode having a first resistance connected in parallel therewith; a second diode having a second resistance connected in parallel therewith, wherein the first diode is connected back-to-back with the second diode, wherein the first and second diodes have a collective impedance controllable by a DC bias voltage applied to diodes by the MRI system, wherein when the RF coil assembly is in a state of being unconnected from the MRI system and no DC bias voltage is applied to the diodes, the collective impedance is increased to substantially impede a flow of current induced in the at least one RF coil circuit by the RF magnetic field transmitted from the other RF coil assembly, and wherein when the RF coil assembly is in a state of being connected to the MRI system and the DC bias voltage is applied to the diodes, the collective impedance is decreased to permit substantially unimpeded flow of RF imaging currents in the at least one RF coil circuit. 13. The RF coil assembly according to claim 12 , wherein the protection circuit is configured to protect the RF coil assembly from an induced RF current generated by the RF magnetic field. 14. The RF coil assembly according to claim 12 , wherein the RF coil assembly in the state of being unconnected is a transmit/receive (T/R) coil. 15. The RF coil assembly according to claim 14 , wherein the T/R switch switches a state of the T/R coil between transmitting and receiving and said protection circuit is electrically coupled between the coil element and said T/R switch. 16. The RF coil assembly according to claim 12 , wherein the another RF coil assembly is a built-in fixed RF coil assembly included in a gantry of the MRI system. 17. The RF coil assembly according to claim 12 , wherein the RF coil assembly in the state of being unconnected is configured to permit an RF current to flow within a coil element of said RF coil circuit when the RF coil assembly is in a state of being connected to the MRI system, and to reduce an RF current flow within the coil element when the RF coil assembly is in a state of being unconnected to the MRI system. 18. The RF coil assembly according to claim 17 , wherein the MRI system includes a receive amplifier which amplifies an RF signal received by the coil element and the protection circuit is electrically coupled between the coil element and the receive amplifier. 19. The RF coil assembly according to claim 17 , further comprising a phase shifter which shifts a phase of an RF signal received by the coil element and wherein said protection circuit is electrically coupled between the coil element and the phase shifter. 20. The RF coil assembly according to claim 12 , wherein the RF coil ass
Control of the operation of the MR system, e.g. setting of acquisition parameters prior to or during MR data acquisition, dynamic shimming, use of one or more scout images for scan plane prescription (G01R33/546 takes precedence) · CPC title
Switching for purposes other than coil coupling or decoupling, e.g. switching between a phased array mode and a quadrature mode, switching between surface coil modes of different geometrical shapes, switching from a whole body reception coil to a local reception coil or switching for automatic coil selection in moving table MR or for changing the field-of-view (G01R33/3671 takes precedence) · CPC title
Tuning/matching of the transmit/receive coil · CPC title
Mutual coupling or decoupling of multiple coils, e.g. decoupling of a receive coil from a transmission coil, or intentional coupling of RF coils, e.g. for RF magnetic field amplification · CPC title
Decoupling of multiple RF coils wherein the multiple RF coils have the same function in MR, e.g. decoupling of a receive coil from another receive coil in a receive coil array, decoupling of a transmission coil from another transmission coil in a transmission coil array · CPC title
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