Claims
- 1. An apparatus for accumulating charged particles, comprising:
- a vacuum vessel in the form of a doughnut for accumulating charged particles;
- a linear electron accelerator for generating incident charged particles and supplying the same to said vacuum vessel;
- at least one deflection electromagnet for deflecting the path for charged particles by the effect of a magnetic field;
- at least one quadrupole electromagnet for converging the charged particles;
- a high frequency cavity for accelerating the charged particles;
- a low speed pulse electromagnet for deflecting the path for the incident charged particles supplied from said linear electron accelerator to said vacuum vessel so as to adjust the path to the orbital path for stored charged particles; and
- a high speed pulse electromagnet for producing magnetic field components of at least four poles directed from the periphery of said vacuum vessel toward the orbital path for stored charged particles on the center axis of said vessel to make the orbital path for the incident charged particles passed through said low speed pulse electromagnet coincide with the orbital path for the stored charged particles without causing any substantial disturbance of the stored charged particles, said deflection electromagnet, said quadrupole electromagnet, said high frequency cavity, said low speed pulse electromagnet and said high speed pulse electromagnet being disposed along said vacuum vessel so as to respectively encircle the same.
- 2. An apparatus for accumulating charged particles according to claim 1, wherein said high speed pulse electromagnet includes: at least four pulse electromagnets disposed at equal intervals around said vacuum vessel so as to encircle the same about the center axis thereof, each of said four pulse electromagnets being capable of producing a magnetic field directed toward the center axis of said vacuum vessel; and a yoke surrounding said four electromagnets.
- 3. An apparatus for accumulating charged particles according to claim 2, wherein the intensity of the magnetic field produced by said at least four pulse electromagnets of said high speed pulse electromagnet is set so that the position of the orbital path for each incident charged particle determined at a predetermined point along the orbital path for the charged particles in said vacuum vessel each time that charged particle makes one revolution is, when represented in a phase plane, always symmetrical about the origin thereof with the position in the phase plane exhibited at the moment when the preceding revolution is completed at the predetermined point.
- 4. An apparatus for accumulating charged particles according to claim 3, wherein a current having a rectangular waveform flows through said high speed pulse electromagnet.
- 5. An apparatus for accumulating charged particles according to claim 3, wherein a current having at least one of a damped oscillation wave, a sine half wave and a triangular wave flows through said high speed pulse electromagnet.
Priority Claims (4)
Number |
Date |
Country |
Kind |
63-294663 |
Nov 1988 |
JPX |
|
63-322125 |
Dec 1988 |
JPX |
|
1-31151 |
Feb 1989 |
JPX |
|
1-65660 |
Mar 1989 |
JPX |
|
Parent Case Info
This application is a divisional of application Ser. No. 07/440,250, filed Nov. 22, 1989, now U.S. Pat. No. 5,138,270.
US Referenced Citations (7)
Non-Patent Literature Citations (5)
Entry |
"Design of Injector Synchrotron" UVSOR-7; Mar., 1981. |
"Design of UVSOR Storage Ring" UVSOR-9, Dec., 1982. |
Tell-Teras Activity Report, 1980-1986, Lina and Storage Ring Facilities Electrotechnical Laboratory. |
Experiment of Fast-Electron Extraction System, S. Nakata, 1987, Mitsubishi Electric Corp., Japan. |
Design of Injector Synchrotron, Institute for Molecular Science Myodaiji, Okasaki, Mar. 1981. |
Divisions (1)
|
Number |
Date |
Country |
Parent |
440250 |
Nov 1989 |
|