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Archive | 2011

DNS of Supercritical Carbon Dioxide Turbulent Channel Flow

Mamoru Tanahashi; Yasuhiro Tominaga; Masayasu Shimura; Katsumi Hashimoto; Toshio Miyauchi

Direct numerical simulation (DNS) of supercritical CO2 turbulent channel flow has been performed to investigate the heat transfer mechanism of supercritical fluid. Due to effects of the mean density variation in the wall normal direction, mean velocity in the cooling region becomes high compared with that in the heating region. The mean width between high- and low-speed streaks near the wall decreases in the cooling region. From the turbulent kinetic energy budget, it is found that compressibility effects related with pressure fluctuation and dilatation of velocity fluctuation can be ignored even for supercritical condition. However, the effect of density fluctuation on turbulent kinetic energy cannot be ignored. In the cooling region, low kinematic viscosity and high thermal conductivity in the low speed streaks modify fine scale structure and turbulent transport of temperature, which results in high Nusselt number in the cooling condition of the supercritical CO2.


ASME/JSME 2007 Thermal Engineering Heat Transfer Summer Conference collocated with the ASME 2007 InterPACK Conference | 2007

Numerical Study of Heat Transfer Mechanism in Turbulent Supercritical CO2 Channel Flow

Xinliang Li; Katsumi Hashimoto; Mamoru Tanahashi; Toshio Miyauchi

Direct numerical simulation (DNS) of supercritical CO2 turbulent channel flow has been performed to investigate the heat transfer mechanism of supercritical fluid. In the present DNS, full compressible Navier-Stokes equations and Peng-Robison state equation are solved. Due to effects of the mean density variation in the wall normal direction, mean velocity in the cooling region becomes high compared with that in the heating region. The mean width between high-and low-speed streaks near the wall decreases in the cooling region, which means that turbulence in the cooling region is enhanced and lots of fine scale eddies are created due to the local high Reynolds number effects. From the turbulent kinetic energy budget, it is found that compressibility effects related with pressure fluctuation and dilatation of velocity fluctuation can be ignored even for supercritical condition. However, the effect of density fluctuation on turbulent kinetic energy cannot be ignored. In the cooling region, low kinematic viscosity and high thermal conductivity in the low speed streaks modify fine scale structure and turbulent transport of temperature, which results in high Nusselt number in the cooling condition of the supercritical CO2.


Trans.JSRAE | 2001

Applied technology of new refrigerants. Development of CO2Heat Pump Water Heater for Residential Use. Development and Performance Evaluation of The Prototype System.:Development and Performance Evaluation of The Prototype System

Michiyuki Saikawa; Katsumi Hashimoto; Tomoaki Kobayakawa; Kasutoshi Kusakari; Masahiko Itoh; Hisayoshi Sakakibara


The Proceedings of the National Symposium on Power and Energy Systems | 2004

Trend report of development of residential CO_2 heat pump hot water heater in Japan

Katsumi Hashimoto; Michiyuki Saikawa


International Journal of Refrigeration-revue Internationale Du Froid | 2018

Performance analysis of a heat pump system with integrated desiccant for electric vehicles

Li Zhang; Katsumi Hashimoto; Hiromi Hasegawa; Michiyuki Saikawa


Frío-calor y aire acondicionado | 2014

Desarrollo de una bomba de calor de CO2 para el secado industrial

Katsumi Hashimoto; Michiyuki Saikawa; Shuichi Misumi; Teruhiko Taira; Yoshitaka Kume


The Proceedings of the Thermal Engineering Conference | 2012

A114 Study of Water to Air CO_2 Heat Pump for Performance Improvement and Expansion of Operating Condition

Katsumi Hashimoto; Michiyuki Saikawa; Shuichi Misumi; Yoshitaka Kume


Proceedings of CHT-08 ICHMT International Symposium on Advances in Computational Heat Transfer, May 11 - 16, 2008, Marrakesh, Morocco | 2008

DNS OF TURBULENT HEAT TRANSFER OF SUPERCRITICAL CO 2

Katsumi Hashimoto; Xinliang Li; Yasuhiro Tominaga; Mamoru Tanahashi; Toshio Miyauchi


ASME/JSME 2007 Thermal Engineering Heat Transfer Summer Conference collocated with the ASME 2007 InterPACK Conference | 2007

Numerical Study of Heat Transfer Mechanism in Turbulent Supercritical CO

Xinliang Li; Katsumi Hashimoto; Mamoru Tanahashi; Toshio Miyauchi


The Proceedings of Conference of Kanto Branch | 2002

Development of CO_2 Heat Pump Water Heater for Residential Use : Point of Development and Outline of Developed System

Michiyuki Saikawa; Katsumi Hashimoto; Masahiko Itoh; Hisayoshi Sakakibara; Tomoaki Kobayakawa; Kazutoshi Kusakari

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Michiyuki Saikawa

Central Research Institute of Electric Power Industry

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Mamoru Tanahashi

Tokyo Institute of Technology

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Hiromi Hasegawa

Central Research Institute of Electric Power Industry

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Shuichiro Hirai

Tokyo Institute of Technology

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Tomoaki Kobayakawa

Central Research Institute of Electric Power Industry

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Xinliang Li

Tokyo Institute of Technology

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Yasuhiro Tominaga

Tokyo Institute of Technology

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