IP Library › Granted Patent US 7,262,565
Granted Patent B2
US 7,262,565 · App. 11/397,257 · Granted Aug 28, 2007

Spiral orbit charged particle accelerator and its acceleration method

Assignee: National Institute of Radiological Sciences
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Quick Facts
Patent No.
US 7,262,565
App. No.
11/397,257
Granted
Aug 28, 2007
Kind
B2
Abstract

According to the present invention, a non-isochronous magnetic field distribution in which the magnetic field increases as the radius increases is formed and a distribution of fixed-frequency accelerating RF voltage is formed, said non-isochronous magnetic field distribution and said distribution of fixed-frequency accelerating RF voltage being formed so that a harmonic number defined as a ratio of the particle revolution period to the period of the accelerating RF voltage decreases in integer for every particle revolution.

Claims (6)

1. A spiral orbit charged particle accelerator comprising means for forming a non-isochronous magnetic field distribution in which the magnetic field increases as the radius increases and means for forming a distribution of fixed-frequency accelerating RF voltage, said non-isochronous magnetic field distribution and said distribution of fixed-frequency accelerating RF voltage being formed so that a harmonic number defined as a ratio of the particle revolution period to the period of the accelerating RF voltage changes in integer for every particle revolution.

2. A spiral orbit charged particle accelerator described in claim 1 wherein said means for forming a distribution of fixed-frequency accelerating RF voltage maintains the magnitude of the accelerating RF voltage at constant regardless of the radius and said means for forming a non-isochronous magnetic field distribution increases the magnetic field as the radius increases so that the harmonic number decreases in integer for every particle revolution.

3. A spiral orbit charged particle accelerator described in claim 1 wherein said means for forming a non-isochronous magnetic field distribution forms an averaged magnetic field B R at trajectory radius R given by Equation of B R =B Ri (R/R i ) m where R i is an injection radius and B Ri is an averaged magnetic field at the injection point and said means for forming a distribution of fixed-frequency accelerating RF voltage modifies the magnitude of the accelerating RF voltage as the radius increases so that the harmonic number decreases in integer for every particle revolution.

4. An acceleration method used in a spiral orbit charged particle accelerator, said method comprising steps of forming a non-isochronous magnetic field distribution in which the magnetic field increases as the radius increases and forming a distribution of fixed-frequency accelerating RF voltage, said non-isochronous magnetic field distribution and said distribution of fixed-frequency accelerating RF voltage being formed so that a harmonic number defined as a ratio of the particle revolution period to the period of the accelerating RF voltage changes in integer for every particle revolution.

5. An acceleration method described in claim 4 wherein said step of forming a distribution of fixed-frequency accelerating RF voltage includes a step of maintaining the magnitude of the accelerating RF voltage at constant regardless of the radius and said step of forming a non-isochronous magnetic field distribution includes a step of increasing the magnetic field as the radius increases so that the harmonic number decreases in integer for every particle revolution.

6. An acceleration method described in claim 4 wherein said step of forming a non-isochronous magnetic field distribution includes a step of forming an averaged magnetic field B R at trajectory radius R given by Equation of B R =B Ri (R/R i ) m where R i is an injection radius and B Ri is an averaged magnetic field at the injection point and said step of forming a distribution of fixed-frequency accelerating RF voltage includes a step of modifying the magnitude of the accelerating RF voltage as the radius increases so that the harmonic number decreases in integer for every particle revolution.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 3, 2006
From: FUJISAWA, TAKASHI
To: NATIONAL INSTITUTE OF RADIOLOGICAL SCIENCES
Reel/Frame 017721/0491 →
Priority Claims (1)
JP 2004-213129 · Jul 21, 2004 · national
Continuity (2)
Continuation PCTJP200401598900 · Oct 28, 2004
Related Publication 20060175991A1 · Aug 10, 2006