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Fluid-thermal-structural analysis and structural optimization of spiral-wound heat exchanger

机译:螺旋缠绕式换热器的流热结构分析与结构优化

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摘要

Based on the liquid-solid-thermal coupling method, the effects of configuration parameters on the flow characteristic, the heat transfer performance and the stress distribution on the tube bundle of spiral-wound heat exchanger (SWHE) were numerically studied. The results show that the shell-side flow patterns change from cross flow into oblique flow and the overall heat transfer coefficient increases firstly and then decreases with the increase of the wingding angle. The maximum stress intensity decreases firstly with the increase of the inlet flow rate and then decreases. The thermal stress takes a leading position in the tube bundle stress distribution attributed to the higher heat transfer temperature difference. With the inlet flow rate increasing, the heat transfer is enhanced and the temperature difference decreases which result in the decrease of the proportion of thermal stress and the increase of the impact of the primary stress. The optimal structure was obtained by the Multi-Objective Genetic Algorithm based on the Genetic Aggregation response surface. Compared with the original structure, the average comprehensive performance of three optimal candidates of SWHE increase by 57.64% and the maximum stresses intensity of the tube bundle are far less than the material allowable stress.
机译:基于液固热耦合方法,数值研究了螺旋缠绕式换热器(SWHE)的结构参数对流动特性,传热性能和应力分布的影响。结果表明,壳侧流型由横流向斜流变化,总传热系数随翼缘角的增加先增大后减小。最大应力强度首先随着入口流量的增加而减小,然后减小。由于较高的传热温度差,热应力在管束应力分布中占据主导地位。随着入口流量的增加,传热增强,温差减小,这导致热应力比例的减小和主应力影响的增大。通过基于遗传聚集响应面的多目标遗传算法获得了最优结构。与原始结构相比,三个最佳候选SWHE的平均综合性能提高了57.64%,并且管束的最大应力强度远远小于材料的允许应力。

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