Claims
- 1. A principal detector element for use in a toroid cavity detector for in-situ analysis of a sample through the use of nuclear magnetic resonance, said detector including a housing which forms a toroid cavity with a longitudinal axis, which is adapted to receive a sample therein and to which is adapted to be applied an externally applied magnetic field, and including a pulse generator for supplying a pulsed signal to an electrical conductor extending into said toroid cavity such that a magnetic field being at least partially oriented perpendicular to said externally applied magnetic field and internal to said toroid cavity is developed when said pulsed signal is supplied to said electrical conductor, said principal detector element comprising:
a generally flat metal conductor having a plane that is oriented generally parallel to the longitudinal axis of said toroid cavity, said metal conductor being disposed in said housing relative to said sample and being coupled to said electrical conductor.
- 2. A principal detector element as set forth in claim 1 wherein said metal conductor is circular in shape.
- 3. A principal detector element as set forth in claim 1 wherein said metal conductor is oval in shape.
- 4. A principal detector element as set forth in claim 3 wherein said metal conductor has a plurality of holes extending therethrough.
- 5. A principal detector element as set forth in claim 1 wherein said metal conductor is coupled to said electrical conductor such that said pulsed signal is supplied to said metal conductor.
- 6. A sample holder for use in a toroid cavity detector for in-situ analysis of a sample through the use of nuclear magnetic resonance, said detector including a housing which forms a toroid cavity with a longitudinal axis and to which is adapted to be applied an externally applied magnetic field, and including a pulse generator for supplying a pulsed signal to an electrical conductor extending into said toroid cavity and thereby to a principal detector element such that a magnetic field being at least partially oriented perpendicular to said externally applied magnetic field and internal to said toroid cavity is developed when said pulsed signal is supplied to said electrical conductor and said principal detector element, said sample holder comprising:
a nonconductive holder for hermetically sealing said sample relative to said principal detector element.
- 7. A sample holder for use in a toroid cavity detector as set forth in claim 6 wherein said principal detector element is a generally flat circular metal conductor and said nonconductive holder includes a principal detector element holder in which said principal detector element is coupled to said electrical conductor; and a compressing portion for hermetically sealing said sample and said principal detector element.
- 8. A sample holder for use in a toroid cavity detector as set forth in claim 7 wherein said principal detector element holder has a recess in which is disposed said principal detector element and a groove about said recess adapted to receive an O-ring.
- 9. A sample holder for use in a toroid cavity detector as set forth in claim 8 wherein said compressing portion is a nonconductive end cap having a flange to compress said O-ring.
- 10. A sample holder for use in a toroid cavity detector as set forth in claim 9 wherein said sample includes components of a coin cell battery hermetically sealed by said O-ring when said compressing portion compresses said O-ring.
- 11. A sample holder for use in a toroid cavity detector as set forth in claim 10 wherein said components of said coin cell battery include a carbon electrode, a permeable electrical separator, an electroactive metal counter electrode and a current collector.
- 12. A sample holder for use in a toroid cavity detector as set forth in claim 11 including a counter electrode wire coupled to said current collector so that a direct current potential can be applied to said components of said coin cell battery through said electrical conductor and said counter electrode wire.
- 13. A sample holder for use in a toroid cavity detector as set forth in claim 7 wherein said principal detector element holder and said compressing portions are generally cylindrical in shape.
- 14. A sample holder for use in a toroid cavity detector as set forth in claim 6 wherein said principal detector element is a generally flat circular metal conductor and said nonconductive holder includes first and second press portions, said second press portion having a recess in which is disposed said principal detector element, in which said sample is disposed so as to be encircled by an O-ring and in which is disposed a piston, said first press portion having a piston driving mechanism so that said piston compresses said sample and said O-ring against said principal detector element to hermetically seal said sample between said piston and said principal detector element.
- 15. A sample holder for use in a toroid cavity detector as set forth in claim 14 wherein said sample includes components of a coin cell battery hermetically sealed by said O-ring when said O-ring is compressed by said piston.
- 16. A sample holder for use in a toroid cavity detector as set forth in claim 15 wherein said components of said coin cell battery include a carbon electrode, a permeable electrical separator, an electroactive metal counter electrode and a current collector.
- 17. A sample holder for use in a toroid cavity detector as set forth in claim 16 including a counter electrode wire coupled to said current collector through said piston driving mechanism so that a direct current potential can be applied to said components of said coin cell battery through said electrical conductor and said counter electrode wire.
- 18. A sample holder for use in a toroid cavity detector as set forth in claim 14 wherein said principal detector element is coupled to said electrical conductor within said recess.
- 19. A sample holder for use in a toroid cavity detector as set forth in claim 6 wherein said principal detector element is a generally flat oval metal conductor and said nonconductive holder includes a first transparent plate on one side of said metal conductor with said sample positioned between said first transparent plate and said metal conductor and a second plate on an opposite side of said metal conductor, said first and second plates being compressed towards each other so that said sample is positioned relative to said metal conductor between said first plate and said metal conductor.
- 20. A sample holder for use in a toroid cavity detector as set forth in claim 19 including an O-ring encircling said sample and positioned between said first transparent plate and said metal conductor such that said O-ring hermetically seals said sample between said first transparent plate and said metal conductor.
- 21. A sample holder for use in a toroid cavity detector as set forth in claim 6 wherein said principal detector element is a generally flat oval metal conductor with a plurality of holes extending therethrough and said nonconductive holder includes a first transparent plate on one side of said metal conductor with said sample positioned between said first transparent plate and said metal conductor and a second plate on an opposite side of said metal conductor, said first and second plates being compressed towards each other so that said sample is positioned relative to said metal conductor between said first plate and said metal conductor.
- 22. A sample holder for use in a toroid cavity detector as set forth in claim 21 including an O-ring encircling said sample and positioned between said first transparent plate and said metal conductor such that said O-ring hermetically seals said sample between said first transparent plate and said metal conductor.
- 23. A sample holder for use in a toroid cavity detector as set forth in claim 22 wherein said sample is separated from said metal conductor by a semi-permeable membrane.
- 24. A coin cell battery imager for use in a toroid cavity detector for in-situ analysis of components of a coin cell battery through the use of nuclear magnetic resonance, said detector including a housing which forms a toroid cavity with a longitudinal axis and to which is adapted to be applied an externally applied magnetic field, and including a pulse generator for supplying a pulsed signal to an electrical conductor extending into said toroid cavity and thereby to a principal detector element such that a magnetic field being at least partially oriented perpendicular to said externally applied magnetic field and internal to said toroid cavity is developed when said pulsed signal is supplied to said electrical conductor and said principal detector element, said coin cell battery imager comprising:
a nonconductive principal detector element holder having a recess in which is disposed said principal detector element and a groove about said recess adapted to receive an O-ring; and a nonconductive end cap secured to said principal detector element holder such that said O-ring is compressed so as to hermetically seal said components within said coin cell battery imager and relative to said principal detector element.
- 25. A coin cell battery imager as set forth in claim 24 wherein said components of said coin cell battery include a carbon electrode, a permeable electrical separator, an electroactive metal counter electrode and a current collector.
- 26. A coin cell battery imager as set forth in claim 25 including a counter electrode wire coupled to said current collector so that a direct current potential can be applied to said components of said coin cell battery through said electrical conductor and said counter electrode wire.
- 27. A coin cell battery imager for use in a toroid cavity detector for in-situ analysis of components of a coin cell battery through the use of nuclear magnetic resonance, said detector including a housing which forms a toroid cavity with a longitudinal axis and to which is adapted to be applied an externally applied magnetic field, and including a pulse generator for supplying a pulsed signal to an electrical conductor extending into said toroid cavity and thereby to a principal detector element such that a magnetic field being at least partially oriented perpendicular to said externally applied magnetic field and internal to said toroid cavity is developed when said pulsed signal is supplied to said electrical conductor and said principal detector element, said coin cell battery imager comprising:
first and second press portions, said second press portion having a recess in which is disposed said principal detector element, in which said component are disposed so as to be encircled by an O-ring and in which is disposed a piston, said first press portion having a piston driving mechanism so that said piston compresses said components and said O-ring against said principal detector element to hermetically seal said components between said piston and said principal detector element.
- 28. A coin cell battery imager as set forth in claim 27 wherein said components of said coin cell battery include a carbon electrode, a permeable electrical separator, an electroactive metal counter electrode and a current collector and including a counter electrode wire coupled to said current collector through said piston driving mechanism so that a direct current potential can be applied to said components of said coin cell battery through said electrical conductor and said counter electrode wire.
- 29. A sample holder for use in a toroid cavity detector for in-situ analysis of a sample through the use of nuclear magnetic resonance, said detector including a housing which forms a toroid cavity with a longitudinal axis and to which is adapted to be applied an externally applied magnetic field, and including a pulse generator for supplying a pulsed signal to an electrical conductor extending into said toroid cavity and thereby to a principal detector element such that a magnetic field being at least partially oriented perpendicular to said externally applied magnetic field and internal to said toroid cavity is developed when said pulsed signal is supplied to said electrical conductor and said principal detector element, said sample holder comprising:
a holding plate disposed relative to one side of said metal conductor with said sample positioned between said holding plate and said metal conductor; a sealing device encircling said sample; and fastening devices to compress said holding plate towards said principal detector element so that said sample is hermetically sealed by said sealing device between said principal detector element and said holding plate.
- 30. A sample holder for use in a toroid cavity detector as set forth in claim 29 wherein said principal detector element is a generally flat oval metal conductor with a plurality of holes extending therethrough and a semi-permeable membrane separates said sample from said principal detector element.
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 and The University of Chicago.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09631156 |
Aug 2000 |
US |
Child |
10247869 |
Sep 2002 |
US |