Claims
- 1. A method of detecting selected nuclei within a specimen comprising:
- (a) providing a primary static magnetic field having a known field configuration in a three dimensional space having an "X", "Y", and "Z" dimensional frame of reference, the primary static magnetic field having a magnetic field orientation in the "Z" direction;
- (b) superimposing a focusing static magnetic field having a magnetic field orientation in the "Z" direction and having a selectable gradient in the "Y" direction on the primary static magnetic field to produce a resulting static magnetic field having a magnetic field orientation in the "Z" direction and having a known field configuration;
- (c) providing a source of oscillating magnetic radiation having a selectable frequency;
- (d) selecting a frequency .omega..sub.o of the source of oscillating magnetic radiation to satisfy the equation:
- .omega..sub.o =.vertline.H.sub.o .vertline..gamma.
- where:
- .omega..sub.o =resonance angular frequency of the selected nuclei
- .vertline.H.sub.o .vertline.=magnitude of resulting static magnetic field at a particular location
- .gamma.=gyromagnetic ratio for the selected nuclei and is a constant for the selected nuclei
- for the selected nuclei at a resonance domain located within the resulting static magnetic field where the field strength is substantially .vertline.H.sub.o .vertline.;
- (e) positioning the specimen such that the resonance domain impinges on the specimen;
- (f) orienting the oscillating magnetic radiation having frequency .omega..sub.o in a direction such that its magnetic field orientation is orthogonal to the "Z" direction;
- (g) directing the oscillating magnetic radiation to the resonance domain whereby a nuclear magnetic resonance signal is generated for the selected nuclei in the specimen located within the resonance domain;
- (h) receiving the nuclear magnetic resonance signal generated; and
- (i) processing the nuclear magnetic resonance signal to determine a nuclear magnetic resonance value representing the selected nuclei extant in the resonance domain within the specimen.
- 2. The method according to claim 1 wherein the primary static magnetic field has a substantially uniform field configuration and the focusing static magnetic field has a selectable linear gradient in the "Y" direction.
- 3. The method according to claim 2 further including, the step of selecting the linear gradient in the "Y" direction of the focusing static magnetic field to adjust the size of the resonance domain.
- 4. The method according to claim 1 further including the step of scanning the specimen in the "Y" direction by adjusting the frequency of the oscillating magnetic energy to a new value of .omega..sub.o whereby the resonance domain is moved to a location where the resulting static magnetic field has a field strength of .vertline.H.sub.o .vertline. satisfy said equation for said new value of .omega..sub.o.
- 5. The method according to claim 4 further including the step of focusing the oscillating magnetic radiation having a frequency .omega..sub.o to have a maximum intensity along a pencil beam in the "Y" direction and scanning of the specimen in the "Y" direction is along the pencil beam.
- 6. The method according to claim 5 wherein scanning along the pencil beam is accomplished in a step-wise fashion.
- 7. The method according to claim 6 further including the step of incrementally moving the specimen with respect to the pencil beam in the "X" direction a predetermined distance each time a scan of the specimen along the pencil beam has been accomplished whereby a grid of nuclear magnetic resonance values is obtained for a cross section in a "Y-X" plane through the specimen.
- 8. The method according to claim 7 further including the step of displaying the grid of values to provide a visual image of the grid.
- 9. The method according to claim 5 utilizing a pair of intersecting and mutually orthogonal planar coils having a line of intersection in the "Y" direction for forming the pencil beam along the line of intersection.
- 10. The method according to claim 1 wherein a pair of doughnut shaped superconducting magnets axially aligned in the "Z" direction and separated by a Helmholtz distance is utilized for providing the primary static magnetic field and wherein the specimen is positioned between the doughnut shaped superconducting magnets.
- 11. The method according to claim 1 wherein field focusing coils are used to provide the focusing static magnetic field.
- 12. The method according to claim 1 wherein at least one planar permanent magnet is utilized to provide the primary static magnetic field.
- 13. The method according to claim 1 wherein the specimen includes a live mammal and the nuclear magnetic values may include intensities of nuclear magnetic resonance signals received, spin-spin relaxation times, spin-lattice relaxation times, spin-mapping values and amplitude versus frequency spectra.
- 14. The method according to claim 1 wherein the selected nuclei may include nuclei selected fromm P.sup.31, K.sup.39, Na.sup.23, H.sup.1, C.sup.13, N.sup.15, N.sup.14 or O.sup.17.
- 15. Apparatus for detecting selected nuclei within a specimen comprising:
- (a) means for providing a primary static magnetic field having a known field configuration in a three dimensional space having an "X" "Y" and "Z" dimensional frame of reference, the primary static magnetic field having a magnetic field orientation in the "Z" direction;
- (b) means for superimposing a focusing static magnetic field having a magnetic field orientation in the "Z" direction and having a selectable gradient in the "Y" direction on the primary static magnetic field to produce a resulting static magnetic field having a magnetic field orientation in the "Z" direction and having a known field configuration;
- (c) means for providing oscillating magnetic radiation having a selectable frequency;
- (d) means for selecting a frequency .omega..sub.o of the oscillating magnetic radiation to satisfy the equation:
- .omega..sub.o =.vertline.H.sub.o .vertline..gamma.
- .omega..sub.o =resonance angular frequency of the selected nuclei
- H.sub.o =magnitude of resulting static magnetic field at a particular location
- .gamma.=gyromagnetic ratio for the selected nuclei and is a constant for the selected nuclei
- for the selected nuclei at a resonance domain located within the resulting static magnetic field where the field strength is substantially .vertline.H.sub.o .vertline.;
- (e) means for positioning the specimen such that the resonance domain impinges on the specimen;
- (f) means for orienting the oscillating magnetic radiation having the frequency .omega..sub.o in a direction such that its magnetic field orientation is orthogonal to the "Z" direction;
- (g) means for directing the oscillating magnetic radiation to the resonance domain whereby a nuclear magnetic resonance signal is generated for the selected nuclei in the specimen located within the resonance domain;
- (h) means for receiving the nuclear magnetic resonance signal generated; and
- (i) means for processing the nuclear magnetic resonance signal to determine a nuclear magnetic resonance value representing the selected nuclei extant in the resonance domain within the specimen.
- 16. The apparatus according to claim 15 wherein the means for providing the primary static magnetic field includes means for providing a substantially uniform field configuration and wherein the means for providing the focusing static magnetic field includes means for providing a field having a selectable linear gradient in the "Y" direction.
- 17. The apparatus according to claim 16 further including means for selecting the linear gradient in the "Y" direction of the focusing static magnetic field to adjust the size of the resonance domain.
- 18. The apparatus according to claim 15 further including means for scanning the specimen in the "Y" direction including means for adjusting the frequency of the oscillating magnetic energy to a new value of .omega..sub.o whereby the resonance domain is moved to a new location where the resulting static magnetic field has a field strength of .vertline.H.sub.o .vertline. to satisfy said equation for said new value for .omega..sub.o.
- 19. The apparatus according to claim 18 further including means for focusing the oscillating magnetic radiation having a frequency .omega..sub.o to have a maximum intensity along a pencil beam in the "Y" direction and scanning of the specimen in the "Y" direction is along the pencil beam.
- 20. The apparatus according to claim 19 wherein the means for focusing the oscillating magnetic radiation includes a pair of intersecting and mutually orthogonal planar coils having a line of intersection in the "Y" direction for forming the pencil beam along the line of intersection.
- 21. The apparatus according to claim 20 wherein the planar coils are circular and the line of intersection comprises a common diameter.
- 22. The apparatus according to claim 15 wherein the means for providing the primary static magnetic field comprises a pair of doughnut shaped superconducting magnet axially aligned in the "Z" direction and separated by a Helmholtz distance.
- 23. The apparatus according to claim 15 wherein the means for superimposing a focusing static magnetic field comprises field focusing coils.
- 24. The apparatus according to claim 15 wherein the means for providing the primary static magnetic field comprises at least one planar permanent magnet.
Parent Case Info
This is a division of application Ser. No. 961,858, filed Nov. 20, 1978, now U.S. Pat. No. 4,354,499.
US Referenced Citations (8)
Divisions (1)
|
Number |
Date |
Country |
Parent |
961858 |
Nov 1978 |
|