Claims
- 1. A magnet assembly comprising:
- a superconductive coil; and
- a ferromagnetic field enhancer disposed adjacent to said superconductive coil, said ferromagnetic field enhancer comprising a first cylindrical portion, a second cylindrical portion having a greater diameter than said first cylindrical portion, and a frustoconical portion joining said first and second cylindrical portions, said ferromagnetic field enhancer having a recessed end face formed on said second cylindrical portion.
- 2. The magnet assembly of claim 1 wherein said first cylindrical portion has an end face with a conical recess formed therein.
- 3. The magnet assembly of claim 1 wherein said first cylindrical portion has an end face with a plurality of annular grooves formed therein.
- 4. The magnet assembly of claim 3 wherein said grooves are of varying depths.
- 5. An open magnet device comprising:
- first and second superconductive coils;
- a first ferromagnetic field enhancer encircled by said first superconductive coil; and
- a second ferromagnetic field enhancer encircled by said second superconductive coil, each one of said first and second ferromagnetic field enhancers comprising a first cylindrical portion, a second cylindrical portion having a greater diameter than said first cylindrical portion and a recessed end face formed thereon, and a frustoconical portion joining said first and second cylindrical portions, said first and second field enhancers being spaced apart from and parallel to one another so as to define a working volume therebetween.
- 6. The open magnet device of claim 5 further comprising a support frame which supports said field enhancers in a spaced-apart, parallel relationship.
- 7. The open magnet device of claim 6 further comprising a pedestal member to which said support frame is rotatively mounted.
- 8. The open magnet device of claim 5 wherein said first cylindrical portion has an end face with a conical recess formed therein.
- 9. The open magnet device of claim 5 wherein said first cylindrical portion has an end face with a plurality of annular grooves formed therein.
- 10. The open magnet device of claim 9 wherein said grooves are of varying depths.
- 11. The magnet assembly of claim 1 wherein said superconductive coil encircles said first cylindrical portion.
- 12. The open magnet device of claim 5 wherein said first superconductive coil encircles said first cylindrical portion of said first field enhancer, and said second superconductive coil encircles said first cylindrical portion of said second field enhancer.
- 13. The open magnet device of claim 5 wherein said recessed end face of said first ferromagnetic field enhancer and said recessed end face of said second ferromagnetic field enhancer both face said working volume.
- 14. An open magnet device comprising:
- a pedestal;
- a C-shaped frame rotatively mounted to said pedestal;
- a first ferromagnetic field enhancer attached to one end of said C-shaped frame;
- a second ferromagnetic field enhancer attached to another end of said C-shaped frame, each one of said first and second ferromagnetic field enhancers comprising a first cylindrical portion, a second cylindrical portion having a greater diameter than said first cylindrical portion and a recessed end face formed thereon, and a frustoconical portion joining said first and second cylindrical portions, said first and second field enhancers being spaced apart from and parallel to one another so as to define a working volume therebetween;
- a first superconductive coil encircling said first ferromagnetic field enhancer; and
- a second superconductive coil encircling said second ferromagnetic field enhancer.
CROSS REFERENCE TO RELATED APPLICATIONS
This application is a Continuation of application Ser. No. 07/924,989, filed 5 Aug., 1992 now abandoned.
This application is related to copending application entitled "Method for Designing Open MRI Magnets," Ser. No. 07/924,990, filed Aug. 5, 1992 and assigned to the same assignee as the present invention.
US Referenced Citations (9)
Foreign Referenced Citations (2)
Number |
Date |
Country |
314262 |
May 1989 |
EPX |
424808 |
May 1991 |
EPX |
Non-Patent Literature Citations (2)
Entry |
J. A. Nelder and R. Mead, "A Simplex Method for Function Minimization," Computer Journal, vol. 7, 1965, pp. 308-313. |
W. R. Brody, "New Design May Invigorate Resistive Magnet Technology," Diagnostic Imaging, Oct. 1985, pp. 134-139. |
Continuations (1)
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Number |
Date |
Country |
Parent |
924989 |
Aug 1992 |
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