Low field squid MRI devices, components and methods
Low field SQUID MRI devices, components and methods are disclosed. They include a portable low field (SQUID)-based MRI instrument and a portable low field SQUID-based MRI system to be operated under a bed where a subject is adapted to be located. Also disclosed is a method of distributing wires on an image encoding coil system adapted to be used with an NMR or MRI device for analyzing a sample or subject and a second order superconducting gradiometer adapted to be used with a low field SQUID-based MRI device as a sensing component for an MRI signal related to a subject or sample.
1. A portable low field superconducting quantum interference device (SQUID)-based magnetic resonance imaging (MRI) instrument, comprising:
a sensing coil assembly to sense an MRI signal from a subject or sample;
a SQUID to receive the MRI signal from the sensing coil assembly;
a cryogenic cooler associated with the SQUID and a superconducting magnetic shield;
an enclosure enclosing the sensing coil assembly, the SQUID, the superconducting magnetic shield and the cryogenic cooler; and
a portable frame containing the enclosure and adapted to contain main field coils and field compensation coils.
2. The portable low field SQUID-based MRI instrument of claim 1 , wherein the superconducting magnetic shield is located between the sensing coil assembly and the SQUID.
3. The portable low field SQUID-based MRI instrument of claim 1 , further comprising wheels at the bottom of the portable frame.
4. The portable low field SQUID-based MRI instrument of claim 1 , wherein the portable frame comprises a substantially horizontal portion where the enclosure is located and two substantially vertical portions supporting the horizontal portions, the subject or sample adapted to be located under the substantially horizontal portion and between the two substantially vertical portions.
5. The portable low field SQUID-based MRI instrument of claim 1 , further comprising a data acquisition amplifier (DAQ) electrically connected to the SQUID, a processor connected to the DAQ, and a power control unit (PCU) connected to the processor, the PCU being connected to the main field coils and field compensation coils.
6. The portable low field SQUID-based MRI instrument of claim 5 , further comprising readout circuitry associated with the SQUID, the readout circuitry comprising a SQUID array amplifier.
7. The portable low field SQUID-based MRI instrument of claim 1 , wherein the SQUID is connected to the sensing coil assembly by way of a superconducting flux transformer, and wherein a current-limiting component is provided between the superconducting flux transformer and the SQUID.