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Development of Cyclotron Beam Technology for Applications in Materials Science and Biotechnology at JAERI-TIARA

机译:回旋加速器束技术的发展,用于JAERI-TIARA的材料科学和生物技术

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Recent progress of cyclotron ion beam development for applications in materials science and biotechnology at the ion-irradiation research facility TIARA of the Japan Atomic Energy Research Institute(JAERI) is overviewed. The AVF cyclotron in TIARA can accelerate protons and heavy ions up to 90 MeV and 27.5 MeV, respectively. In order to conform to the requirement of a reliable tuning of microbeam formation, the cyclotron beam current has been stabilized by controlling the temperature of the magnet yoke and pole within +/-0.5° and hence by decreasing the variation of the magnetic field ΔB/B below 10~(-5). A heavy ion microbeam with energy of hundreds MeV is a significantly useful probe for researches on biolunctional elucidation in biotechnology. Production of the microbeam with spot size as small as 1μm by quadrupole lenses requires the energy spread of the beam ΔE/E < 2 x 10~(-4). In order to minimize the energy spread of the cyclotron beam, the fifth-harmonic voltage waveform has been successfully superposed on the fundamental one to make energy gain uniform.
机译:日本原子能研究所(JAERI)的离子辐照研究机构TIARA概述了回旋加速器离子束在材料科学和生物技术中应用的最新进展。 TIARA中的AVF回旋加速器可以分别将质子和重离子加速到90 MeV和27.5 MeV / n。为了符合可靠地调整微束形成的要求,通过将磁轭和磁极的温度控制在+/- 0.5°以内并因此通过减小磁场变化ΔB/来稳定回旋加速器束电流。 B低于10〜(-5)。能量为数百MeV的重离子微束对于生物技术中的生物功能解析研究是非常有用的探针。用四极透镜生产光斑尺寸小至1μm的微束需要光束的能量散布ΔE/ E <2 x 10〜(-4)。为了使回旋加速器束的能量散布最小化,已成功将第五谐波电压波形叠加在基波上,以使能量增益均匀。

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