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ASME/JSME 2011 8th Thermal Engineering Joint Conference | 2011

Heat Transfer Analysis of a Novel Piezoelectric Air Pump

Andrew Eastman; Mark Kimber; Atsuhiko Hirata; Gaku Kamitani

With the propagation of ever faster and more powerful electronics, the need for active, low power, cooling is becoming apparent. Piezoelectric materials exhibit reasonable performance with very little power consumption. Therefore a promising potential solution lies in utilizing piezoelectric materials via fans or pumps. However, piezoelectric pumps have mainly been employed in the transport of liquids and aqueous solutions through small microchannels. The structures typically consist of both an outlet nozzle and an inlet nozzle that are geometrically disposed to promote flow in one direction. Device construction is generally simplified compared to mechanically actuated openings, however much of the potential flow is lost due to backflow. The piezoelectric pump studied in this paper consists of a single outlet nozzle with a large inlet. Its unique construction allows it to overcome relatively high pressures as well as promoting better manufacturability. Experimental investigations were undertaken in order to characterize the cooling potential of the device. A thin film heater provided a constant heat flux and an infrared camera was used to determine the resulting temperatures of the heated surface. Full-field data of the convection coefficient were analyzed as a function of vibration amplitude of the piezoelectric diaphragm and distance from the nozzle to the heated target. A maximum heat transfer coefficient was found when the blower was approximately 30 mm from the heated surface and this distance was independent of vibration amplitude. Correlations have been developed which account for both variables considered and can be used to predict the performance of future designs which rely on the same physical characteristics.Copyright


Journal of the Acoustical Society of America | 2012

Piezoelectric micro-blower

Atsuhiko Hirata; Gaku Kamitani; Hiroaki Wada; Midori Sunaga; Shungo Kanai


Archive | 2003

Component-placing apparatus

Atsuhiko Hirata


Archive | 2003

Voice coil linear actuator, apparatus using the actuator, and method for manufacturing the actuator

Atsuhiko Hirata


Archive | 2008

ALIGNING DEVICE, BONDING APPARATUS, AND ALIGNING METHOD

Atsuhiko Hirata; Shigeki Fukunaga; Shigeki Yamane; Mitsuhiro Namura; Arata Suzuki; Tomonari Watanabe


Archive | 2006

Aligning apparatus, bonding apparatus and aligning method

Atsuhiko Hirata; Shigeki Fukunaga; Shigeki Yamane; Mitsuhiro Namura; Arata Suzuki; Tomonari Watanabe


Archive | 2010

VIBRATING DEVICE AND PIEZOELECTRIC PUMP

Atsuhiko Hirata; Gaku Kamitani


Archive | 2008

OVERTURN PREVENTION CONTROL DEVICE

Atsuhiko Hirata


International Journal of Heat and Mass Transfer | 2012

Thermal analysis of a low flow piezoelectric air pump

Andrew Eastman; Mark Kimber; Atsuhiko Hirata; Gaku Kamitani


Archive | 2006

OVERTURN PREVENTION CONTROLLER FOR TWO-WHEELED VEHICLE

Atsuhiko Hirata; Shigeru Tsuji; Tomonari Watanabe; Shigeki Fukunaga; Koichi Yoshikawa; Koji Kawai

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