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Flow Boiling Heat Transfer Enhancement Under Ultrasound Field in Minichannel Heat Sinks

27 Pages Posted: 1 Jul 2021 Publication Status: Published

See all articles by Jianyang Zhou

Jianyang Zhou

Guangxi University - Collaborative Innovation Center of Sustainable Energy Materials

Xiaoping Luo

South China University of Technology - School of Mechanical and Automotive Engineering

Changzheng Li

Guangxi University - Collaborative Innovation Center of Sustainable Energy Materials

Lizhe Liang

Guangxi University - Collaborative Innovation Center of Sustainable Energy Materials

Gaohui Wang

Guangxi University - Collaborative Innovation Center of Sustainable Energy Materials

Bolin He

South China University of Technology - School of Mechanical and Automotive Engineering

Zhiqun Tian

Guangxi University - Collaborative Innovation Center of Sustainable Energy Materials

Abstract

The enhancement of the heat transfer assisted by ultrasound is considered to be an interesting and highly efficient cooling technology, but the investigation and application of ultrasound in minichannel heat sinks to strengthen the flow boiling heat transfer are very limited. Herein, a novel installation of ultrasound transducers in the flow direction of a minichannel heat sink is designed to experimentally study the characteristics of heat transfer in flow boiling and the influence of operation parameters (e.g., heat flux, mass flux rate) and ultrasound parameters (e.g., frequency, power) on the flow boiling heat transfer in a minichannel heat sink with and without ultrasound field. Bubble motion and flow pattern in the minichannel are analyzed by high-speed flow visualization, revealing that the ultrasound field induces more bubbles at the same observation position and a forward shift of the onset of nucleation boiling along the flow direction, as ultrasonic cavitation produces a large number of bubbles. Moreover, bubbles hitting the channel wall on the left and right sides are found, and the motion speed of the bubbles is increased by 31.9% under the ultrasound field. Our results demonstrate that the heat transfer coefficient obtained under the ultrasound field is 53.9% higher than in the absence of the ultrasound field under the same conditions, and the enhancement ratio is decreased in the high heat flux region due to the change of the flow regime with increasing heat flux. This study provides a theoretical basis for the application of an ultrasound field in minichannel heat sinks for the enhancement of flow boiling heat transfer.

Keywords: Minichannel, Ultrasound field, Flow boiling, Heat transfer enhancement

Suggested Citation

Zhou, Jianyang and Luo, Xiaoping and Li, Changzheng and Liang, Lizhe and Wang, Gaohui and He, Bolin and Tian, Zhiqun, Flow Boiling Heat Transfer Enhancement Under Ultrasound Field in Minichannel Heat Sinks. Available at SSRN: https://ssrn.com/abstract=3877921 or http://dx.doi.org/10.2139/ssrn.3877921

Jianyang Zhou

Guangxi University - Collaborative Innovation Center of Sustainable Energy Materials

East Daxue Road #100
Nanning, 530004
China

Xiaoping Luo

South China University of Technology - School of Mechanical and Automotive Engineering ( email )

Wushan
Guangzhou, Guangdong 510640
China

Changzheng Li

Guangxi University - Collaborative Innovation Center of Sustainable Energy Materials

East Daxue Road #100
Nanning, 530004
China

Lizhe Liang

Guangxi University - Collaborative Innovation Center of Sustainable Energy Materials

East Daxue Road #100
Nanning, 530004
China

Gaohui Wang

Guangxi University - Collaborative Innovation Center of Sustainable Energy Materials

East Daxue Road #100
Nanning, 530004
China

Bolin He

South China University of Technology - School of Mechanical and Automotive Engineering

Wushan
Guangzhou, Guangdong 510640
China

Zhiqun Tian (Contact Author)

Guangxi University - Collaborative Innovation Center of Sustainable Energy Materials ( email )

Nanning
China

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