Flow and heat transfer characteristics of hollow windward bend sandwich structure

被引:0
作者
Bai, Xiaohui [1 ]
Zhang, Yubi [1 ]
Gao, Yuanbo [1 ]
Liu, Cunliang [1 ]
机构
[1] School of Power and Energy, Northwestern Polytechnical University, Xi’an
来源
Hangkong Dongli Xuebao/Journal of Aerospace Power | 2025年 / 40卷 / 05期
关键词
flow and heat transfer; hollow diameter ratio; hollow windward bend structure; Nusselt number; thermal conductivity ratio;
D O I
10.13224/j.cnki.jasp.20230138
中图分类号
学科分类号
摘要
In order to explore the flow and heat transfer characteristics of the hollow structure,the windward bend (WB) sandwich structure with high heat transfer and low flow resistance was hollowed to obtain the hollow windward bend (HWB) sandwich structure. The effects of hollow diameter ratio (d/D),thermal conductivity ratio and Reynolds number on the flow and heat transfer characteristics of HWB structure were studied numerically. The results showed that: ① the hollow windward bend structure can reduce more weight at the expense of lower heat transfer loss. When d/D=0.5,the weight was reduced by 25%,but the Nusselt number was only reduced by 5.5 %; ② the thermal conductivity ratio of the HWB structure had a great influence on the ratio of the interstitial heat transfer to the end wall heat transfer. Increasing the thermal conductivity ratio,the interstitial heat transfer could increase more than the end wall heat transfer; ③ when d/D was small,the flow and heat transfer capacity of HWB structure and solid WB structure was basically the same at the same solid rate; when d/D increased to 0.9, the flow and heat transfer capacity of HWB structure was slightly stronger than that of solid WB structure. © 2025 Beijing University of Aeronautics and Astronautics (BUAA). All rights reserved.
引用
收藏
相关论文
共 20 条
[1]  
ZHANG Wenjian, LIU Ruilin, LIANG Zhifeng, Et al., Present status and development of high altitude performance advancing technology of aero piston engine, Internal Combustion Engine & Parts, 7, pp. 5-10, (2016)
[2]  
XI Lihe, Research on energy management strategy optimization and range extender control system of extended range electric vehicle, (2018)
[3]  
QIAN Bozhang, Energy storage system market and development progress, Beijing: 2014 Fourth Beijing International Energy Storage Conference, (2014)
[4]  
MENG Tong, ZHU Huiren, LIU Cunliang, Et al., Influence of vortex within film cooling hole on film cooling efficiency, Journal of Engineering Thermophysics, 40, 12, pp. 2904-2911, (2019)
[5]  
ZHOU Xichao, WANG Nan, XU Jieming, Et al., Research status of management technology and safety protection technology of lithium iron phosphate battery, Thermal Power Generation, 50, 6, pp. 9-17, (2021)
[6]  
SU Zhichen, Research on IGBT cooling system of high power electronic components, (2021)
[7]  
TARIQ A K., TARIQ A K., Numerical simulation and optimization of flow and heat transfer characteristics in compact heat exchanger
[8]  
PENG Guohui, Analysis of influence of lightweight structure on the sustainable development of commercial aviation, Dual Use Technologies & Products, 314, 7, pp. 1-2, (2014)
[9]  
YUAN Yunfei, LIAO Jun, SONG Jiawen, Et al., Development status and prospect of lattice sandwich active cooling structure, Advances in Aeronautical Science and Engineering, 12, 6, pp. 13-25, (2021)
[10]  
WANG Wenbin, YANG Xiaohu, HAN Bin, Et al., Analytical design of effective thermal conductivity for fluid-saturated prismatic cellular metal honeycombs, Theoretical and Applied Mechanics Letters, 6, 2, pp. 69-75, (2016)