Journal of South China University of Technology(Natural Science Edition) ›› 2022, Vol. 50 ›› Issue (2): 137-144.doi: 10.12141/j.issn.1000-565X.210107

Special Issue: 2022年能源、动力与电气工程

• Energy, Power & Electrical Engineering • Previous Articles    

Analysis of Shell-Side Thermal-Hydraulic Performance of Hybrid Smooth and Spirally Corrugated Tubes

YANG Chen1 WANG Fenglei2 WU Jiayi1 JIN Zhijiang1 QIAN Jinyuan1   

  1. 1.Institute of Process Equipment,College of Energy Engineering,Zhejiang University,Hangzhou 310027,Zhejiang,China;  2.Qingdao Changlong Power Equipment Co.,Ltd.,Qingdao 266700,Shandong,China
  • Received:2021-03-08 Revised:2021-06-07 Online:2022-02-25 Published:2022-02-01
  • Contact: 钱锦远(1988-),男,博士,副教授,主要从事阀芯组件的流量精确调节与减振降噪技术、强化传热技术研究。 E-mail:qianjy@zju.edu.cn
  • About author:杨晨(1995-),女,博士生,主要从事强化传热技术研究。
  • Supported by:
    Supported by the National Natural Science Foundation of China(51875514) and the Key Research and Deve-lopment Plan of Zhejiang Province(2019C01025, 2020C01156)

Abstract: To study the fluid flow and heat transfer condition outside the hybrid smooth and spirally corrugated tube at Re=1.0×104~3.5×104 and provide reference for structure design optimization, the Realizable k-ε turbulence model was used to simulate the convective heat transfer process on the shell-side under constant wall temperature, and the effects of geometrical parameters including pitch p and corrugation depth e on the flow field, the temperature distribution and other turbulent statistics, were explored. Results indicate that the swirl flow out of the hybrid smooth and spirally corrugated tube is less violent than that in the tube-side; the secondary flow exists in the entire domain and the heat transfer performance is enhanced consequently, resulting in the increase of pressure loss simul-taneously; the hybrid smooth and spirally corrugated tube with pitch ratio p/D=3.50 has a superior thermal-hydraulic performance; the tube with corrugation depth ratio e/D=0.22 holds the highest local Nusselt number and the largest pressure drop.

Key words: hybrid smooth and spirally corrugated tube, heat transfer, numerical simulation, secondary flow

CLC Number: