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Featured researches published by Masato Nishikawa.


IEEE Transactions on Ultrasonics Ferroelectrics and Frequency Control | 2010

An ultrasonic air pump using an acoustic traveling wave along a small air gap

Daisuke Koyama; Yuji Wada; Kentaro Nakamura; Masato Nishikawa; Tatsuyuki Nakagawa; Hitoshi Kihara

An ultrasonic air pump that uses a traveling wave along a small air gap between a bending vibrator and a reflector is discussed. The authors investigate ultrasonic air pumps that make use of bending vibrators and reflectors and confirm that air can be induced to flow by generating an asymmetric acoustic standing wave along an air gap. In this paper, we proposed a novel ultrasonic air pump in which a traveling wave along an air gap induces acoustic streaming and achieves one-way airflow. Two new reflector configurations, stepped and tapered, were designed and used to generate traveling waves. To predict airflow generation, sound pressure distribution in the air gap was calculated by means of finite element analysis (FEA). As a preliminary step, 2 FEA models were compared: one piezoelectric-structure-acoustic model and one piezoelectric- structure-fluid model, which included the viscosity effect of the fluid. The sound pressure distribution in the air gap, including fluid viscosity, was calculated by the FEA because it is expected to be dominant and thus have a strong effect on the sound pressure field in such a thin fluid layer. Based on the FEA results of the stepped and the tapered reflectors, it was determined that acoustic traveling waves could propagate along the gaps. Experiments were carried out with the designed bending vibrator and the reflectors. The acoustic fields in the air gap were measured via a fiber optic probe, and it was determined that the sound pressure and the phase distribution tendencies corresponded well with the results computed by FEA. Through our experiments, one-way airflow generation, in the same direction of the traveling wave and with the maximum flow velocity of 5.6 cm/s, was achieved.


Archive | 2005

Self-traveling cleaner

Masato Nishikawa


Archive | 2011

Power supply device and vehicle having the same, and power storage device

Masato Nishikawa; 誠人 西川; Hiroyuki Hashimoto; 裕之 橋本


Archive | 2009

METHOD FOR MANUFACTURING PRISMATIC BATTERY, AND LASER WELDING JIG AND LASER WELDING DEVICE FOR MANUFACTURING THE SAME

Hiroshi Hosokawa; Haruhiko Yamamoto; Masato Nishikawa; Takahiro Nakamura; Hitoshi Kihara


Archive | 2008

Fluid transfer device and fuel cell with the same

Tatsuyuki Nakagawa; Masato Nishikawa; Hitoshi Kihara


Archive | 2013

Battery system for vehicle and electric vehicle with battery system

Masato Nishikawa; 誠人 西川; Yoshihiro Kurokawa; 善寛 黒川; Yoshiya Furuya; 義也 古家; Kazunobu Yokotani; 和展 横谷; Takeharu Furuta; 丈晴 古田; Hideyuki Wakabayashi; 秀之 若林


Archive | 2009

Laser welding jig, laser welding device and method for manufacturing prismatic battery

Hiroshi Hosokawa; Hitoshi Kihara; Takahiro Nakamura; Masato Nishikawa; Haruhiko Yamamoto; 隆広 中村; 晴彦 山本; 均 木原; 弘 細川; 誠人 西川


Archive | 2013

Battery-pack processing device

Masato Nishikawa; 誠人 西川; Reizo Maeda; 礼造 前田; Takeharu Furuta; 丈晴 古田


Archive | 2013

Battery-pack processing method

Masato Nishikawa; 誠人 西川; Reizo Maeda; 礼造 前田; Takeharu Furuta; 丈晴 古田


Archive | 2010

Jig for laser welding, laser welding apparatus and method of manufacturing rectangular cell

Hiroshi Hosokawa; Haruhiko Yamamoto; Masato Nishikawa; Takahiro Nakamura; Hitoshi Kihara

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