Watalu Yokota
Japan Atomic Energy Agency
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Featured researches published by Watalu Yokota.
Review of Scientific Instruments | 2009
Satoshi Kurashima; Nobumasa Miyawaki; Susumu Okumura; Ikuo Ishibori; Takayuki Nara; Takashi Agematsu; Ken-ichi Yoshida; Watalu Yokota; Yoshiteru Nakamura; Kazuo Arakawa; Mitsuhiro Fukuda
Single-turn extraction from the Japan Atomic Energy Agency AVF cyclotron with a K number of 110 using a flat-top (FT) acceleration system has been achieved to reduce the energy spread of an ion beam for microbeam formation with energy up to hundreds of MeV and to increase extraction efficiency from the cyclotron. In order to generate a FT waveform voltage using the fifth-harmonic frequency on a dee electrode, a FT resonator was designed using MAFIA code to achieve downsizing and low power consumption. The FT resonator, coupled to the main resonator through a coupling capacitor, covered the full range of the fifth harmonic frequency from 55 to 110 MHz. Various ion beams, accelerated using different acceleration harmonic modes of h=1 and 2, such as 220 MeV (12)C(5+) (h=2), 260 MeV (20)Ne(7+) (h=2), and 45 MeV H(+) (h=1), were developed by FT acceleration. A clear turn separation of the beam bunches was successfully observed at the extraction region of the large-scale AVF cyclotron with number of revolutions greater than 200. As a result, high extraction efficiency (over 95%) from the cyclotron was achieved. Single-turn extraction was confirmed by counting the number of beam bunches out of the cyclotron for an injected beam pulsed by a beam chopping system in the injection line. The energy spread of the 260 MeV (20)Ne(7+) beam was measured using an analyzing magnet, and we verified a reduction in the energy spread from DeltaE/E=0.1% to 0.05% by single-turn extraction after FT acceleration.
Review of Scientific Instruments | 2010
Ken-ichi Yoshida; Takayuki Nara; Y. Saitoh; Watalu Yokota
Beam intensity fluctuation was investigated using an electron cyclotron resonance ion source of an all-permanent-magnet type under development for highly stable beam intensity. While the source achieved a stability of better than 3.2% by strict regulation of the coolant temperature change within +/-0.1 degrees C, the intensity varies strongly with intentional changes in the temperature of the plasma chamber coolant. The influence of the temperature on chamber expansion, magnetic field strength, and vacuum was measured or estimated in detail. The result shows that a slight change in vacuum and magnetic field strength has considerable influence on the intensity fluctuation.
Applied Radiation and Isotopes | 2009
Masakazu Oikawa; Takahiro Satoh; Tomihiro Kamiya; Satoshi Kurashima; Susumu Okumura; Nobumasa Miyawaki; Hirotsugu Kashiwagi; Mitsuhiro Fukuda; T. Sakai; Watalu Yokota
Ion optical analysis was made for a new focusing high-energy heavy ion microbeam system connected to the AVF cyclotron (K=110) at the accelerator facility, TIARA of JAEA Takasaki. The focusing performance of the microbeam system was estimated from both the calculation up to third-order term using TRANSPORT code and the measurement of beam resolution with the secondary electron imaging. As a result, a minimum beam size was evaluated at 0.56 and 0.62 microm in FWHM for the X and Y directions, respectively. The high-energy heavy ion microbeam system seemed to have been established as designed by the calculation with the TRANSPORT code, because it was confirmed that the calculation results was fairly reproduced by the measurement result.
Review of Scientific Instruments | 2014
Kenichi Yoshida; T. Nara; Yuichi Saitoh; Watalu Yokota
A flat distribution of the minimum magnetic field (flat-Bmin) of an electron cyclotron resonance ion source (ECRIS) is expected to perform better in highly charged ion production than classical Bmin. To form a flat-Bmin structure with a liquid helium-free superconducting device, a coil system of seven coils with four current leads has been designed. The lead number was reduced by connecting the plural coils in series to maintain the flat-Bmin structure even when the coil currents are changed for adjustment. This coil system can be operated with a helium-free cryostat, since the estimation of heat from the leads to the coils is nearly equivalent to the existing superconducting ECRIS of a similar type.
Nuclear Instruments & Methods in Physics Research Section B-beam Interactions With Materials and Atoms | 2007
Masakazu Oikawa; Takahiro Satoh; T. Sakai; Nobumasa Miyawaki; Hirotsugu Kashiwagi; Satoshi Kurashima; Susumu Okumura; Mitsuhiro Fukuda; Watalu Yokota; Tomihiro Kamiya
Physical Review Special Topics-accelerators and Beams | 2007
Yosuke Yuri; Nobumasa Miyawaki; Tomihiro Kamiya; Watalu Yokota; Kazuo Arakawa; Mitsuhiro Fukuda
Nuclear Instruments & Methods in Physics Research Section B-beam Interactions With Materials and Atoms | 2007
Satoshi Kurashima; Nobumasa Miyawaki; Susumu Okumura; Masakazu Oikawa; Ken-ichi Yoshida; Tomihiro Kamiya; Mitsuhiro Fukuda; Takahiro Satoh; Takayuki Nara; Takashi Agematsu; Ikuo Ishibori; Watalu Yokota; Yoshiteru Nakamura
Nuclear Instruments & Methods in Physics Research Section B-beam Interactions With Materials and Atoms | 2009
Satoshi Kurashima; Ken-ichi Yoshida; Masakazu Oikawa; Takahiro Satoh; Nobumasa Miyawaki; Takahiro Yuyama; Susumu Okumura; Hirotsugu Kashiwagi; Ikuo Ishibori; Takayuki Nara; Tomihiro Kamiya; Mitsuhiro Fukuda; Watalu Yokota
Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2011
Nobumasa Miyawaki; Mitsuhiro Fukuda; Satoshi Kurashima; Susumu Okumura; Hirotsugu Kashiwagi; Takayuki Nara; Ikuo Ishibori; Ken-ichi Yoshida; Watalu Yokota; Yoshiteru Nakamura; Kazuo Arakawa; Tomihiro Kamiya
Quantum Beam Science | 2017
Satoshi Kurashima; Takahiro Satoh; Yuichi Saitoh; Watalu Yokota