Performance evaluation of helical coils as a passive heat transfer enhancement technique for R134a flow condensation by use of entropy generation analysis

Author(s):  
Shahriyar Ghazanfari Holagh ◽  
Mohammad Ali Abdous ◽  
Mahmood Shafiee ◽  
Marc A. Rosen
Author(s):  
Qi Li ◽  
Xigang Yuan ◽  
Pierre Neveu ◽  
Gilles Flamant

Convective heat transfer enhancement can significantly improve the thermal efficiency in the conversion, utilization, recovery and storage of energy (in particular solar thermal). Modifying velocity field is the most direct approach to enhance convective heat transfer. However, in most cases the optimal velocity field is unknown and difficult to find even for an experienced researcher. In this paper, a predictive optimization methodology in convective heat transfer enhancement based on minimum entropy generation (MEG) principle was developed. A set of Euler’s equations were derived by the variation calculus to the Lagrange function established by governing equations, specific constraints and objective functional—total entropy generation rate. The solution of these equations resulted in the optimal velocity fields, leading to the minimum entropy generation. To validate and demonstrate the future application of this methodology to solar absorbers used to convert concentrated solar energy, the steady laminar convection heat transfer process in a two-dimensional channel with fixed heat flux boundaries was optimized for given total viscous dissipations. The numerical simulation results showed that lower value of maximum wall temperature was obtained by MEG optimization, which means cheaper and safer materials. The present work indicated that the new methodology could be a good guide in convective heat transfer enhancement design work, especially in CSP receivers.


AIMS Energy ◽  
2020 ◽  
Vol 8 (1) ◽  
pp. 27-47
Author(s):  
Chao Wei ◽  
◽  
Gabriel Alexander Vasquez Diaz ◽  
Kun Wang ◽  
Peiwen Li ◽  
...  

2019 ◽  
Vol 15 (3) ◽  
Author(s):  
Mark Wing Tsan Lee ◽  
Kumar Perumal

AbstractThe usage of nanofluids and modification of tube geometry are the two most prominent heat transfer enhancement methods employed to improve the performance of thermal devices. In this work, the combined effect of these methods has been studied by CFD modelling of developing and Graetz laminar flow in flattened tubes with ZnO – water nanofluid. For the purpose of comparison, simulation with water and circular tube has also been carried out. Performance evaluation has been done using PEC, PER and entropy generation. Results reveal that tube flattening has more pronounced effect on both heat transfer and flow compared to that of nanofluid. An optimum tube flattening in terms of aspect ratio and nanofluid concentration has also been identified for this kind of flow. Flattened tube with aspect ratio 6 with 1 % ZnO-water nanofluid has been found to yield the highest entropy generation reduction of 13.24 %


2005 ◽  
Vol 47 (3) ◽  
pp. 740-745 ◽  
Author(s):  
*Hisae Togashi ◽  
Kazuhisa Yuki ◽  
Hidetoshi Hashizume

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