@article{Yao2026, 
author = {Zhimin Yao and Pengcheng Wen and Die Zhao and Xiaokang Yuan and Yinhui Jiang and Rui Jiao and Ziwen Huang},
title = {Investigation on Heat Transfer and Flow Characteristics of Symmetrical Tesla-Valve Microchannel Heat Exchangers},
year = {2026},
journal = {Journal of Refrigeration},
volume = {47},
number = {1},
pages = {164-172},
keywords = {symmetrical Tesla-valve microchannel, built-in diversion island, enhanced heat transfer, flow resistance},
url = {https://www.sciopen.com/article/10.12465/issn.0253-4339.20250122003},
doi = {10.12465/issn.0253-4339.20250122003},
abstract = {This study proposes a microchannel heat exchanger utilizing a symmetrical Tesla-valve structure to address the challenge of heat dissipation in high-performance electronic devices owing to increased integration and power density. By incorporating built-in diversion island designs, such as trapezoidal, crescent-shaped, and scallop-shaped protrusions, the disturbance of the fluid and mixing effects are enhanced. Numerical simulations are conducted using ANSYS FLUENT to assess the effects of various built-in diversion islands on the heat-transfer and flow characteristics of the microchannel and examine the effects of geometric parameters such as the arc angle and pitch. The results show that compared with conventional parallel straight tube microchannels, the three new structures significantly boost Nu and the performance-evaluation criterion (PEC). Among these, the PEC of the trapezium straight tube microchannel (TSTM) structure ranges from 1.04 to 1.20, showcasing superior overall performance. The optimization of the geometric parameters reveals that the TSTM structure with an arc angle of 18° and a pitch of 3.0 mm achieves the highest heat-transfer efficiency and best overall performance.}
}