Claims
- 1. A two dimensional B1-gradient nuclear magnetic resonance (NMR) imager for in situ, non-invasive spectroscopic investigations and imaging of the internal distribution and speciation of materials of fluid, solid, and semisolid objects in two spatial dimensions, said NMR imager comprising:
a hollow electrically conducting cylinder having opposite open cylinder ends, a first cap and a second cap secured to said opposite open cylinder ends to define a toroid cavity and enclose a sample; an elongate central conductor extending along a central axis of said toroid cavity; a magnet for generating an externally applied static main magnetic field B0 to said toroid cavity and said enclosed sample; an RF signal transmitter/receiver coupled to said conductor for generating a magnetic field B1 within said toroid cavity and for receiving a sample response to said magnetic fields B0 and B1; a pivot angle position controller coupled to said cylinder for adjusting a pivot angle position of said toroid cavity and enclosed sample to vary an angle between said magnetic field B0 and said central axis of said toroid cavity; and a positional rotation controller coupled to said cylinder for positioning said toroid cavity and enclosed sample at variable angular orientations relative to an initial position and a plane formed by said externally applied static main magnetic field B0 and said central axis of said toroid cavity, and a computer for operatively controlling said RF signal transmitter/receiver, said pivot angle position controller and said positional rotation controller for sequentially receiving sample responses and for transforming said sample responses to produce a two-dimensional image.
- 2. The NMR imager as recited in claim 1 wherein said elongate central conductor is fixedly secured to said first cap and extends along said central axis of said toroid cavity through an aligned, central feedthrough in said second cap.
- 3. The NMR imager as recited in claim 1 wherein said cylinder, said first cap and said second cap are formed of electrically conductive material, non-magnetic material.
- 4. The NMR imager as recited in claim 3 wherein said electrically conductive material, non-magnetic material is a selected one of copper, beryllium copper (BeCu), aluminum, phosphor bronze or titanium.
- 5. The NMR imager as recited in claim 1 includes a support assembly supporting said cylinder and wherein said pivot angle position controller is coupled to said support assembly for adjusting said pivot angle position of said toroid cavity and enclosed sample to vary an angle between said magnetic field B0 and said central axis of said toroid cavity.
- 6. The NMR imager as recited in claim 1 wherein θ represents said angle between said magnetic field B0 and said central axis of said toroid cavity and said angle θ is adjusted by said pivot angle position controller to at least one selected value between 0° and 180°.
- 7. The NMR imager as recited in claim 1 wherein ζ represents said variable angular orientations relative to an initial position and a plane formed by said externally applied static main magnetic field B0 and said central axis of said toroid cavity; and said variable angular orientations ζ is adjusted by said positional rotation controller to a plurality of selected values between 0° and 360°.
- 8. A nuclear magnetic resonance (NMR) method for in situ, non-invasive spectroscopic investigations and imaging of the internal distribution and speciation of materials of fluid, solid, and semisolid objects in two spatial dimensions, said NMR imaging method comprising the steps of:
providing a toroid cavity detector including a cylinder defining a toroid cavity and enclosing a sample and an elongate central conductor extending along a central axis of said toroid cavity; generating an externally applied static main magnetic field B0 to said toroid cavity and said enclosed sample; utilizing a pivot angle position controller coupled to said toroid cavity detector, adjusting a pivot angle position of said toroid cavity and enclosed sample to vary an angle θ between said magnetic field B0 and said central axis of said toroid cavity; utilizing a positional rotation controller coupled to said toroid cavity detector, positioning said toroid cavity and enclosed sample at variable angular orientations ζ relative to an initial position and a plane formed by said externally applied static main magnetic field B0 and said central axis of said toroid cavity, utilizing a RF signal transmitter/receiver generating a magnetic field B1 within said toroid cavity and receiving a sample response to said magnetic fields B0 and B1; operatively controlling said RF signal transmitter/receiver, said pivot angle position controller and said positional rotation controller and sequentially receiving sample responses; and processing said sample responses to produce a two-dimensional image.
- 9. The NMR imaging method of claim 8 wherein the step of operatively controlling said RF signal transmitter/receiver, said pivot angle position controller and said positional rotation controller and sequentially receiving sample responses includes the steps of generating said magnetic field B1 within said toroid cavity and receiving sample responses at each of a plurality of different values of θ at a first angle of θ; and providing a second different angle of ζ and repeating the steps of generating said magnetic field B1 within said toroid cavity and receiving sample responses at each of said plurality of different values of θ.
- 10. The NMR imaging method of claim 9 wherein said plurality of different values of θ between said magnetic field B0 and said central axis of said toroid cavity are selected values between 0 and 180° and wherein said first and said second values of ζ are selected values between 0° and 360°.
- 11. The NMR imaging method of claim 8 wherein the step of operatively controlling said RF signal transmitter/receiver, said pivot angle position controller and said positional rotation controller and sequentially receiving sample responses includes the steps of adjusting said pivot angle position of said toroid cavity and enclosed sample to a selected angle θ between said magnetic field B0 and said central axis of said toroid cavity; generating said magnetic field B1 within said toroid cavity and receiving sample responses at each of a plurality of different values of ζ.
- 12. The NMR imaging method of claim 11 wherein said selected angle θ between said magnetic field B0 and said central axis of said toroid cavity is 90° and wherein said plurality of different values of ζ are selected values between 0° and 360°.
- 13. The NMR imaging method of claim 11 wherein said selected angle θ between said magnetic field B0 and said central axis of said toroid cavity is 54.7° and wherein said plurality of different values of ζ are selected values between 0° and 360°.
- 14. The NMR imaging method of claim 13 wherein said sample is contained in a sample container within said toroid cavity and said sample container is rotated at a predefined speed, and stroboscopic data acquisition is synchronized with the sample container rotation.
CONTRACTUAL ORIGIN OF THE INVENTION
[0001] The United States Government has rights in this invention pursuant to Contract No. W-31-109-ENG-38 between the United States Government and Argonne National Laboratory.
Provisional Applications (1)
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Number |
Date |
Country |
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60308412 |
Jul 2001 |
US |