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Generalized entransy dissipation and its application in heat conduction optimizations with arbitrary boundary conditions.

Authors :
Su, Chuan-Jin
Zhao, Tian
Guo, Zeng-Yuan
Source :
International Journal of Heat & Mass Transfer. Dec2023, Vol. 216, pN.PAG-N.PAG. 1p.
Publication Year :
2023

Abstract

Heat conduction optimization with arbitrary boundary conditions is a challenging problem that lacks a universal optimization criterion. In the present work, the concept of generalized entransy dissipation (GED) is proposed through transforming heat conduction optimization problems with arbitrary boundaries into their homogeneous counterparts. It is demonstrated that minimizing GED leads to optimal thermal performance of heat conduction problems with arbitrary boundary conditions. In addition, GED-based continuous optimization problems are convex, guaranteeing the uniqueness and global optimality of the solution and benefitting numerical calculations. Two typical problems with complex boundary conditions are studied by applying the minimum principle of GED, and the results are compared with other optimization objectives. The numerical results show that GED achieves better thermal performance than entropy generation- (EG) and entransy dissipation- (ED) based optimizations. For the optimization of boundary average temperature under the given input heat flux of ▪, GED achieves the best result, where the optimized average temperature is ▪ and ▪ lower compared with EG and ED optimizations, respectively. In general, GED offers a reasonable and easy to implement optimization principle for heat conduction processes with arbitrary boundaries and may provide new insights for heat conduction optimization. • GED-criterion is proposed for optimizing heat conduction with arbitrary boundaries. • Minimizing GED leads to optimal thermal performance of complex boundary conditions. • Convexity of GED-based continuous optimization guarantees global optimality. • GED outperforms EGMP and EDEP, lowering average temperature by 48.8 and 27.5 K. • GED offers a universal and easy-to-use principle for heat conduction processes. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00179310
Volume :
216
Database :
Academic Search Index
Journal :
International Journal of Heat & Mass Transfer
Publication Type :
Academic Journal
Accession number :
171992341
Full Text :
https://doi.org/10.1016/j.ijheatmasstransfer.2023.124534