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Dive into the research topics where Yukio Kaneko is active.

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Featured researches published by Yukio Kaneko.


Journal of Magnetic Resonance | 2018

B1-control receive array coil (B-RAC) for reducing B1+ inhomogeneity in abdominal imaging at 3T-MRI

Yukio Kaneko; Yoshihisa Soutome; Hideta Habara; Yoshitaka Bito; Hisaaki Ochi

B1+ inhomogeneity in the human body increases as the nuclear magnetic resonance (NMR) frequency increases. Various methods have thus been developed to reduce B1+ inhomogeneity, such as a dielectric pad, a coupling coil, parallel transmit, and radio-frequency (RF) shimming. However, B1+ inhomogeneity still remains in some cases of abdominal imaging. In this study, we developed a B1-control receive array coil (B-RAC). Unlike the conventional receive array coil, B-RAC reduces B1+ inhomogeneity by using additional PIN diodes to generate the inductive loop during the RF transmit period. The inductive loop can generate dense and sparse regions of the magnetic flux, which can be used to compensate for B1+ inhomogeneity. First, B-RAC is modeled in the numerical simulation, and the spatial distributions of B1+ in a phantom and a human model were analyzed. Next, we fabricated a 12-channel B-RAC and measured receive sensitivity and B1+ maps in a 3T-MRI experiment. It was demonstrated that B-RAC can reduce B1+ inhomogeneity in the phantom and human model without increasing the maximum local specific absorption rate (SAR) in the body. B-RAC was also found to have almost the same the receive sensitivity as the conventional receive coil. Using RF shimming combined with B-RAC was revealed to more effectively reduce B1+ inhomogeneity than using only RF shimming. Therefore, B-RAC can reduce B1+ inhomogeneity while maintaining the receive sensitivity.


Archive | 2010

Semiconductor element and method of making same

Yuhei Ikemoto; Koji Hirata; Kazuo Aoki; Yukio Kaneko; Takekazu Ujiie


Archive | 2009

High frequency magnetic field coil and magnetic resonance imaging apparatus with the same

Yukio Kaneko; Hideta Habara; Yoshihisa Soutome; Yosuke Otake; Yoshitaka Bito


Archive | 2011

Magnetic resonance imaging device and transmitting sensitivity distribution calculation method

Suguru Yokosawa; Yo Taniguchi; Yoshitaka Bito; Yukio Kaneko


Archive | 2009

ANTENNA DEVICE AND MAGNETIC RESONANCE IMAGING DEVICE

Hideta Habara; Yoshitaka Bito; Hisaaki Ochi; Yoshihisa Soutome; Yukio Kaneko; Masayoshi Dohata


Archive | 2008

High frequency magnetic field coil and magnetic resonance imaging apparatus

Yoshitaka Bito; Hideta Habara; Yukio Kaneko; Yosuke Otake; Etsuhisa Saotome; 悦久 五月女; 良孝 尾藤; 秀太 羽原; 幸生 金子


Archive | 2011

RF RECEPTION COIL AND MAGNETIC RESONANCE IMAGING APPARATUS USING SAME

Yukio Kaneko; Hideta Habara; Yoshihisa Soutome; Yosuke Otake; Hisaaki Ochi; Yoshitaka Bito


Archive | 2010

BALUN AND MAGNETIC RESONANCE IMAGING APPARATUS

Yosuke Otake; Yoshihisa Soutome; Yukio Kaneko; Yoshitaka Bito; Hisaaki Ochi; Koji Hirata


Archive | 2015

Magnetresonanzbildgebungseinrichtung und Bestimmungsverfahren für Hochfrequenzmagnetfeldbedingungen

Yukio Kaneko; Hideta Habara; Yoshihisa Soutome; Yoshitaka Bito; Ltd. o Hitachi


Archive | 2009

Conductive member, and magnetic resonance imaging apparatus using the same

Yoshitaka Bito; Hideta Habara; Yukio Kaneko; Hisaaki Ochi; Etsuhisa Saotome; 悦久 五月女; 良孝 尾藤; 秀太 羽原; 久晃 越智; 幸生 金子

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