4.7 Article

Analysis, prediction and multi-objective optimization of helically coiled tube-in-tube heat exchanger with double cooling source using RSM

期刊

出版社

ELSEVIER FRANCE-EDITIONS SCIENTIFIQUES MEDICALES ELSEVIER
DOI: 10.1016/j.ijthermalsci.2020.106568

关键词

Three fluid heat transfer; Response surface methodology; Multi-objective optimization; HCTT heat Exchanger; Helically coiled tube

资金

  1. Research Program of Made in China 2025 of Sichuan Province [2018CD00259]
  2. Open Fund of Sichuan Provincial Key Lab of Process Equipment and Control [GK201810, GK201909]

向作者/读者索取更多资源

A novel technical solution for helically coiled tube-in-tube heat exchanger with double cooling source was proposed for regeneratively cooled air production in advanced aeroengines. 54 simulation runs were conducted to evaluate the impact of geometric and operating parameters on heat exchanger performance. Analysis revealed that outer tube curvature ratio and inner tube curvature ratio were significant structural parameters affecting entropy generation and outlet temperature of the regeneratively cooled air.
A novel technical solution about helically coiled tube-in-tube (HCTT) heat exchanger with double cooling source is proposed to obtain regeneratively cooled air for advance aeroengine. 54 simulation runs are performed according the Box-Behnken design table, in which the effect of geometrical and operating parameters on performance of heat exchanger are well considered. Grid independence was carefully carried out referring to ASME V&V 20-2009. The simulation model is validated based on comparison with available experimental data and analysis of flow pattern. The performance of the HCTT heat exchanger i.e. entropy generation number N-e, absorption heat ratio of the inner tube eta, and out temperature of the regeneratively cooled air T-a,T- out were evaluated using Response Surface Methodology. The significance of each term in regression model has been checked by analysis of variance. The results shows that all the design variables are significant for predicting N r, and T,00 except non-dimensional coil pitch lambda for finding eta; the regression models have a good prediction performance; outer tube curvature ratio (delta(0)) is the most significant structure parameter affecting N-e, and T-a,T- out, while inner tube curvature ratio (delta(i)) is the most significant linear term for predicting eta, indicating that 60 and 6, are key structure parameters. It also shows that heat transfer characteristics of the HCTT heat exchanger are complicated engineering problem subjected to multi factors interaction. For instance, total number of terms in model for predicting ri reaches to 18, including 5 linear terms, 10 interaction terms along with 3 square terms. The influences of all interaction terms on N-e, eta, and T-a,T- out were displayed using 3D surface graph, the effect rule of interaction terms were discussed in details. Desirability function approach was employed to conduct multi-objective optimization for goals of T-a,T- out = 630 K, and minimum N-e and eta. The optimum values of design variable were obtained. This method possesses practical significances for prediction and optimization of HCTT heat exchanger.

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