Phys. Rev. ST Accel. Beams 10, 053503 (2007) [6 pages]

Carbon/proton therapy: A novel gantry design

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D. Trbojevic * and B. Parker
Brookhaven National Laboratory, Upton, New York 11973, USA

E. Keil
CERN, Geneva, Switzerland

A. M. Sessler
Lawrence Berkeley National Laboratory, Berkeley, California 94720, USA

Received 7 September 2006; published 29 May 2007

A major expense and design challenge in carbon/proton cancer therapy machines are the isocentric gantries. The transport elements of the carbon/proton gantry are presently made of standard conducting dipoles. Because of their large weight, of the order of ∼100   tons, the total weight of the gantry with support structure is ∼600   tons. The novel gantry design that is described here is made of fixed field superconducting magnets, thus dramatically reducing magnet size and weight compared to conventional magnets. In addition, the magnetic field is constant throughout the whole energy region required for tumor treatment. Particles make very small orbit offsets, passing through the beam line. The beam line is built of combined-function dipoles such as a nonscaling fixed field alternating gradient (NS-FFAG) structure. The very large momentum acceptance NS-FFAG comes from very strong focusing and very small dispersion. The NS-FFAG small magnets almost completely filled the beam line. They first make a quarter (or close to a quarter) of an arc bending upward and an additional half of a circle beam line finishing so that the beam is pointed towards the patient. At the end of the gantry, additional magnets with a fast response are required to allow radial scanning and to provide the required position and spot size. The fixed field combined-function magnets for the carbon gantry could be made of superconducting magnets by using low temperature superconducting cable or by using high temperature superconductors.


©2007 The American Physical Society

URL: http://link.aps.org/abstract/PRSTAB/v10/e053503
DOI: 10.1103/PhysRevSTAB.10.053503
PACS: 29.27.Eg, 41.85.Ja, 41.75.Ak

* Electronic address: dejan@bnl.gov

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