Claims
- 1. A circular accelerator comprising:
- a beam injector for injecting a beam of charged particles into a closed orbit in said accelerator;
- a control unit for said beam injector to inject said beam into said closed orbit during at least one injection cycle of an injection period and to discontinue injection of said beam during at least one waiting cycle of said injection period following said first cycle;
- means for increasing a rate of radiation damping of said beam during said injection period; and
- means for accelerating said beam of charged particles after completion of said injection period.
- 2. A circular accelerator according to claim 1, wherein said means for increasing a rate of radiation damping comprises an electromagnet arrangement for applying a magnetic field to said beam, and means for increasing intensity of said magnetic field during said injection cycle relative to said intensity during said waiting cycle.
- 3. A circular accelerator according to claim 2, wherein said electromagnet arrangement comprises a multiple pole electromagnet situated in a path of said closed orbit, at a location which is offset by a predetermined distance relative to said path of said closed orbit.
- 4. A circular accelerator according to claim 2, wherein said means for increasing a rate of radiation damping comprises a multiple pole electromagnet situated in a path of said closed orbit at a location which is aligned with a center of said path, and means for shifting an orbital path of said beam in a direction of increased magnetic field intensity of said multiple pole electromagnet.
- 5. A circular accelerator according to claim 4, wherein said means for shifting an orbital path of said beam comprises a high .frequency acceleration cavity for supplying energy to said beam.
- 6. A circular accelerator according to claim 1, wherein said means for increasing a rate of radiation damping comprises an electromagnet arrangement for applying a magnetic field to said beam and means for lengthening a path of said closed orbit within said magnetic field during said injection cycle relative to length of said path within said magnetic field during said waiting cycle.
- 7. A circular accelerator according to claim 6, wherein said means for lengthening a path of said closed orbit comprises an energy arrangement of multiple pole electromagnets which shift a path of said beam outwardly, thereby increasing path length of said beam within said magnetic field.
- 8. A circular accelerator according to claim 1, wherein said means for increasing a rate of radiation damping comprises an electromagnet arrangement for causing said closed orbit to follow a zigzag path during said injection cycle.
- 9. A circular accelerator comprising:
- means for injecting a beam of charged particles into a center closed orbit;
- acceleration means for controlling energy of said beam;
- control means for controlling an orbital path of said beam injected into said center closed orbit and emission of dampening radiation by said beam, by selectively altering either magnetic field intensity of a magnetic field applied to said beam or an acceleration frequency applied to said beam by said acceleration means, said control means comprising at least one orbit electromagnet that determines said orbital path according to a relationship between a magnetic field intensity of said orbit electromagnet and energy of said beam, and at least one radiation damping electromagnet causing emission of damping radiation by said beam while in said center closed orbit; and
- means operative only during injection of said beam for increasing a rate of emission of damping radiation by said beam by strengthening magnetic field intensity of a magnetic field applied to said beam during said injection;
- wherein a center path of said radiation damping electromagnet and said center closed orbit are offset relative to each other, by a selected distance.
- 10. A circular accelerator according to claim 6, wherein said offset is created by positioning said radiation damping electromagnet at a location wherein a center path of said radiation damping electromagnet is displaced from said center closed orbit.
- 11. A circular accelerator according to claim 9, wherein said offset is in a direction such that radiation damping of said beam in increased when said beam loses energy and shifts its orbit.
- 12. A circular accelerator according to claim 8, wherein said center path of said radiation damping electromagnet is outward of said center closed orbit, and a dispersion function of said beam, at a point where said radiation damping electromagnet is located, is positive.
- 13. A circular accelerator according to claim 11, wherein said center path of said radiation damping electromagnet is inward of said center closed orbit, and a dispersion function of said beam, at a point where said radiation damping electromagnet is located, is negative.
- 14. A circular accelerator according to claim 9, wherein said means for increasing a rate of emission of damping radiation comprises means for strengthening said magnetic field intensity during said injection relative to magnetic field intensity after completion of said injection.
- 15. A circular accelerator according to claim 9, wherein said radiation damping electromagnet generates a magnetic field which has at least four poles.
- 16. A circular accelerator according to claim 15, wherein said radiation damping electromagnet is a four pole electromagnet.
- 17. A circular accelerator comprising:
- means for injecting a beam of charged particles into a center closed orbit;
- acceleration means for controlling energy of said beam;
- control means for controlling an orbital path of said beam injected into said center closed orbit and emission of damping radiation by said beam by selectively altering either magnetic field intensity of a magnetic field applied to said beam or an acceleration frequency applied to said beam by said acceleration means; and
- means, operative only during an injection cycle in which said beam is injected into said center closed orbit, for increasing a rate of emission of damping radiation by said beam;
- wherein said means for injecting a beam of charged particles into said center closed orbit is operative during said injection cycle, and is inoperative during a damping cycle.
- 18. A circular accelerator according to claim 17, wherein said means for increasing a rate of emission of damping radiation is operative during said damping cycle and during said injection cycle.
- 19. A circular accelerator according to claim 17, wherein said means for increasing a rate of emission of damping radiation comprises means for measuring a current of said beam, and means for repeating said injection and damping cycles for a number of repetitions based on a measured magnitude of said current.
- 20. Apparatus for a circular acceleration having a closed orbit for a beam of charged particles, comprising:
- at least one radiation damping electromagnet, activated only during injection of said beam, for enhancing radiation of said beam; and
- control means for enhancing said radiation by said radiation damping electromagnet;
- wherein said control means is operative during said injection cycle when said beam is injected into said closed orbit, and is in operative during a damping cycle until a dimension of said beam reaches a desired size; and
- wherein said control means comprises means for detecting a current of said beam and means for causing said injection period and said damping period to be repeated at least once, based on a result of said means for detecting.
- 21. An apparatus according to claim 20, wherein said control means comprises means for strengthening a magnetic field intensity of said radiation damping electromagnet.
- 22. An apparatus according to claim 20, wherein each said at least one radiation damping electromagnet has at least two poles.
- 23. A method of controlling a circular accelerator comprising the steps of:
- injecting a beam of charged particles into a closed orbit in said accelerator during a first cycle of an injection period, whereby said beam emits radiation while in said orbit;
- discontinuing said injecting at the end of said first cycle;
- waiting during a second cycle of said injection period;
- increasing a rate of radiation damping during said injection period; and
- operating said circular accelerator after completion of said injection period.
- 24. A method according to claim 23, wherein said first and second cycles are repeated at least once during said injection period.
- 25. A method according to claim 24, wherein said damping is performed continuously during said injection period.
- 26. A method according to claim 24, wherein said damping is performed intermittently during said injection period, during said second cycle only.
- 27. A method according to claim 23, wherein said operating step comprises accelerating said beam to a desired energy level.
- 28. A method according to claim 23, wherein said operating step comprises storage of said beam with a desired energy.
- 29. A circular accelerator comprising:
- a source providing a beam of charged particles;
- at least one electromagnet for guiding said beam of charged particles in a closed orbit;
- an injector for injecting said beam of charged particles into said closed orbit during an injection period;
- damping means, operative only during said injection period, for increasing a rate of damping of betatron oscillation of particles in said particle beam during said injection period, said damping means being operable separately from said at least one electromagnet for guiding said beam; and
- means for accelerating said beam of charged particles after completion of said injection period.
- 30. Method of operating a particle accelerator of the type having a source providing a beam of charged particles, at least one electromagnet for controlling said beam of charged particles to follow a closed orbit, means for injecting said beam of charged particles into said closed orbit during an injection period and means for accelerating said beam of charged particles after completion of said injection period, said method comprising:
- providing damping means, situated along said closed orbit;
- exciting said damping means at first level for increasing a rate of radiation damping during said injection period; and
- reducing excitation of said damping means to a second level which is lower than said first level, after completion of said injection period.
Priority Claims (1)
Number |
Date |
Country |
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3-054338 |
Mar 1991 |
JPX |
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Parent Case Info
This application is a continuation of application Ser. No 07/833,660, filed on Feb. 11, 1992 now abandoned.
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4783634 |
Yamamoto et al. |
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4812774 |
Tsumaki et al. |
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4988950 |
Nakayama et al. |
Jan 1991 |
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Continuations (1)
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Number |
Date |
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Parent |
833660 |
Feb 1992 |
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