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首页> 外文期刊>International Journal of Thermal Sciences >Sensitivity and stress analysis of serrated fin structure in plate-fin heat exchanger on cryogenic condition
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Sensitivity and stress analysis of serrated fin structure in plate-fin heat exchanger on cryogenic condition

机译:低温条件下板翅式换热器锯齿状翅片结构的敏感性与应力分析

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摘要

The effects and interaction effects of fin height, fin space, fin thickness and fin interrupted length on flow resistance, heat transfer and stress of plate fin heat exchanger (PFHE) on cryogenic condition are analyzed quantitatively, based on computational fluid dynamics (CFD), fluid structure interaction (FSI), response surface methodology (RSM) and sobol sensitivity analysis. The stress distribution in serrated fin structure shows that the large stress is mainly distributed in the regions of keen-edged geometric structure such as weld joint region and the region connecting two rows of fin. The sensitivity analysis results reveal that j factor is the most sensitive to fin interrupted length, and f factor and maximum stress are most sensitive to fin thickness. The sobol sensitivity analysis results show that, for j factor and maximum stress, it is sufficient to investigate the first-order sensitivity indices and high-order sensitivity is weak. For f factor, it is necessary to consider the second-order sensitivity, especially for fin space and fin thickness. Based on above analyses, by combining with Multi-Objective Genetic Algorithm (MOGA), the serrated fin structure is optimized from perspective of two objectives (maximizing JF factor and minimizing maximum stress) and three objectives (maximizing j factor, minimizing f factor and minimizing maximum stress). In general, the optimization results based on two objectives are more intuitive, and they offer a smaller solution space. An original point is optimized, the results reveal that, compared with original point, JF factor of optimized point 1 increases by 17.8% without changing maximum stress, while maximum stress of optimized point 2 decreases by 50.0% without changing JF factor.
机译:根据计算流体动力学(CFD),分析了翅片高度,翅片空间,翅片厚度和翅片中断长度对低温条件对低温条件的流动性,传热和应力的影响的效果和相互作用。流体结构相互作用(FSI),响应面方法(RSM)和软骨敏感性分析。锯齿状翅片结构中的应力分布表明,大应力主要分布在诸如焊接接合区域和连接两排翅片的区域的耐焊侧几何结构区域中。灵敏度分析结果表明,J因子对翅片中断长度最敏感,F因子和最大应力对翅片厚度最敏感。 SOBOL敏感性分析结果表明,对于J因子和最大应力,调查一阶灵敏度指数就足够了,高级敏感性弱。对于F因子,有必要考虑二阶灵敏度,特别是对于翅片空间和翅片厚度。基于以上分析,通过与多目标遗传算法(MOGA)组合,从两个目标(最大化JF因子最大化并最大限度地减少最大应力)和最大限度地,最大限度地,最小化F因子,最小化F因子并最小化,优化锯齿状鳍结构最大应力)。通常,基于两个目标的优化结果更为直观,它们提供了更小的解决方案空间。原始点被优化,结果表明,与原始点相比,优化点1的JF系数1增加17.8%而不改变最大应力,而优化点2的最大应力在不改变JF因子的情况下降低50.0%。

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