IMECH-IR  > 高温气体动力学国家重点实验室
Topology optimization of regenerative cooling structures under high Reynolds number flow with variable thermo-physical properties
Li XL(李新磊)1,2; Wu K(吴坤)1; Zhao, Linying3,4; Fan XJ(范学军)1,2,4
Corresponding AuthorWu, Kun([email protected])
Source PublicationAPPLIED THERMAL ENGINEERING
2025
Volume258Pages:16
ISSN1359-4311
AbstractIn the design of thermal protection system for hypersonic vehicles, the efficient convective heat transfer within regenerative cooling channels plays a critical role in maintaining their thermal performance. This study focuses on the topology optimization (TO) of the cooling channels that operate at high Reynolds number and have variable thermo-physical properties. A novel approach is introduced to enhance the density-based method by incorporating an effective artificial force correction and tabulating the temperature-dependent thermal properties. Several topology-optimized cooling layouts were generated to minimize the maximum temperature within the design domain while considering different power dissipation constraints. This confirms the validity of the proposed lumped correction term in momentum equation accounting both viscous and convective body forces. Regarding the thermal performance of the optimized layouts, the staggered arrangement of cellular ribs in the TO channel was found to induce multiple flow separations and promote turbulent mixing, thereby improving heat transfer efficiency and mitigating the thermal acceleration effect. Conjugate heat transfer calculations revealed that the optimal topology-optimized channel achieved a 24.3% improvement in overall thermal performance while being 15.3% lighter than the straight channel design. Furthermore, the optimal topology optimized layout consistently outperformed the straight channel design by 6.6% to 24.3% in terms of the overall thermal performance across a wide range of heat flux distribution and mass flow rate conditions. This investigation highlights the effectiveness of topology optimization in designing regenerative cooling structures featuring high Reynolds number hydrocarbon thermal fluid flow.
KeywordRegenerative cooling Topology optimization High Reynolds number Variable thermo-physical properties Heat transfer performance
DOI10.1016/j.applthermaleng.2024.124602
Indexed BySCI ; EI
Language英语
WOS IDWOS:001339533200001
WOS KeywordHEAT-TRANSFER ; DESIGN ; FLUIDS
WOS Research AreaThermodynamics ; Energy & Fuels ; Engineering ; Mechanics
WOS SubjectThermodynamics ; Energy & Fuels ; Engineering, Mechanical ; Mechanics
Classification一类
Ranking1
ContributorWu, Kun
Citation statistics
Cited Times:4[WOS]   [WOS Record]     [Related Records in WOS]
Document Type期刊论文
Identifierhttp://dspace.imech.ac.cn/handle/311007/97083
Collection高温气体动力学国家重点实验室
Affiliation1.Chinese Acad Sci, Inst Mech, State Key Lab High Temp Gas Dynam, Beijing 100190, Peoples R China;
2.Univ Chinese Acad Sci, Sch Engn Sci, Beijing 100049, Peoples R China;
3.Northwestern Polytech Univ, State IJR Ctr Aerosp Design & Addit Mfg, Xian 710072, Shaanxi, Peoples R China;
4.Hefei Zhongke Chongming Technol Co, Hefei 230601, Peoples R China
Recommended Citation
GB/T 7714
Li XL,Wu K,Zhao, Linying,et al. Topology optimization of regenerative cooling structures under high Reynolds number flow with variable thermo-physical properties[J]. APPLIED THERMAL ENGINEERING,2025,258:16.Rp_Au:Wu, Kun
APA 李新磊,吴坤,Zhao, Linying,&范学军.(2025).Topology optimization of regenerative cooling structures under high Reynolds number flow with variable thermo-physical properties.APPLIED THERMAL ENGINEERING,258,16.
MLA 李新磊,et al."Topology optimization of regenerative cooling structures under high Reynolds number flow with variable thermo-physical properties".APPLIED THERMAL ENGINEERING 258(2025):16.
Files in This Item:
There are no files associated with this item.
Related Services
Recommend this item
Bookmark
Usage statistics
Export to Endnote
Lanfanshu
Similar articles in Lanfanshu
[李新磊]'s Articles
[吴坤]'s Articles
[Zhao, Linying]'s Articles
Baidu academic
Similar articles in Baidu academic
[李新磊]'s Articles
[吴坤]'s Articles
[Zhao, Linying]'s Articles
Bing Scholar
Similar articles in Bing Scholar
[李新磊]'s Articles
[吴坤]'s Articles
[Zhao, Linying]'s Articles
Terms of Use
No data!
Social Bookmark/Share
All comments (0)
No comment.
 

Items in the repository are protected by copyright, with all rights reserved, unless otherwise indicated.