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首页> 外文期刊>International journal for simulation and multidisciplinary design optimization >Performing multiobjective optimization on perforated plate matrix heat exchanger surfaces using genetic algorithm
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Performing multiobjective optimization on perforated plate matrix heat exchanger surfaces using genetic algorithm

机译:使用遗传算法对多孔板状换热器表面进行多目标优化

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Matrix Heat Exchanger is having wide spread applications in cryogenics and aerospace, where high effectiveness and compactness is essential. This can be achieved by providing high thermal conductive plates and low thermal conductive spacers alternately. These perforated plate matrix heat exchangers have near to 100% efficiency due to low longitudinal heat transfer. The heat transfer and flow friction characteristics of a perforated plate matrix heat exchanger can be represented using Colburn factor and friction factor. In this paper, dimensionless parameters like Reynolds number (Re), porosity (p), perforation perimeter factor (Pf), plate thickness to pore diameter ratio (l/d) and spacer thickness to plate thickness ratio (s/l) have been optimized for maximum Colburn factor and minimum friction factor using genetic algorithm. Two algorithms, one for single objective and the other for multi-objective problems, which are believed to be more efficient, are described. The algorithms coded with MATLAB, is used to perform multi-objective optimization on perforated plate matrix heat exchanger surfaces. The results show promising results.
机译:Matrix热交换器在低温和航空航天领域有着广泛的应用,在这些领域,高效和紧凑是必不可少的。这可以通过交替设置高导热板和低导热垫片来实现。这些多孔板状热交换器的纵向传热低,效率接近100%。多孔板状热交换器的传热和流动摩擦特性可以用科尔本因数和摩擦因数表示。在本文中,已经确定了无量纲参数,如雷诺数(Re),孔隙率(p),射孔周长因子(Pf),板厚与孔径比(l / d)和垫片厚度与板厚比(s / l)。使用遗传算法针对最大Colburn系数和最小摩擦系数进行了优化。描述了两种算法,一种用于单目标,另一种用于多目标问题,它们被认为更有效。用MATLAB编码的算法用于对多孔板状热交换器表面进行多目标优化。结果显示出令人鼓舞的结果。

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