首页> 外文会议>ASME(American Society of Mechanical Engineers) Turbo Expo vol.4 pt.A; 20070514-17; Montreal(CA) >GENEITC ALGORITHM BASED DESIGN AND OPTIMIZATION OF AN OUTER-FINS AND INNER-FINS TUBE HEAT EXCHANGER
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GENEITC ALGORITHM BASED DESIGN AND OPTIMIZATION OF AN OUTER-FINS AND INNER-FINS TUBE HEAT EXCHANGER

机译:基于遗传算法的外翅片和内翅片管换热器的设计与优化

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One of passive enhancement techniques, Extended Surfaces, are commonly employed in many heat exchangers to enlarge the heat transfer area on gases side because of the low heat transfer coefficients, which may be 10 to 100 times smaller than those of liquids side. The use of extended surfaces (or referred to as finned surfaces) will reduce the thermal resistance of gases side. Enhanced heat transfer coefficient will be achieved by using the basic surface geometries: plate-fin and tube-fin. With respect to the tube-fin type heat exchanger, fins may be employed outside tubes (herein called outer-fins) to enhance the heat transfer of shell-side, and alternatively fins may be also employed inside tubes (herein called inner-fins) to increase the intensity of heat transfer of tube-side. The desire to accomplish the gas-to-gas heat exchange through the tubular heat exchangers will lead to develop heat transfer enhancement techniques for outside and inside tubes. Therefore based on integration with such two mechanisms, namely, outer-fins and inner-fins of enhancement heat transfer techniques, a kind of outer-fins and inner-fins tube heat exchanger has been preliminary proposed (ASME-IGTI, Paper No.2006-90260 [20]). Such heat exchanger is potentially used in gas-to-gas heat exchangers, especially used for high-pressure operating conditions, where the plate-fin heat exchangers might not be applicable. In general, the design task is a complex trial-and-error process and there is always the possibility that the design results such as geometrical parameters are not the optimum. Therefore, the motivation of this paper is to conduct optimum designs of such heat exchanger (hereafter called Outer-Fins and Inner-Fins tube Heat Exchanger, OFIF HE). A computational intelligent technique, Genetic Algorithm (GA) is applied to search and optimize geometrical parameters of the OFIF HE. The minimum total volume or minimum total annual cost of such OFIF HE is taken as an objective function in the GA respectively. The results show that the optimized OFIF HE provides lower total volume or lower total annual cost than those presented in previous work. The method is universal and may be used for design and optimization of OFIF Hes under different specified duties and design objectives.
机译:无源增强技术之一,扩展表面,通常用于许多热交换器中,因为其传热系数低,可以扩大气体侧的传热面积,该系数可能比液体侧的传热系数小10至100倍。使用延伸表面(或称为翅片表面)会降低气体侧的热阻。通过使用基本的表面几何形状(板翅和管翅),可以提高传热系数。对于管翅式热交换器,可以在管的外侧采用翅片(在此称为外翅片)以增强壳侧的热传递,或者在管的内部也可以采用翅片(在此称为内翅片)。增加管侧的传热强度。通过管状热交换器完成气体对气体热交换的愿望将导致开发用于外管和内管的传热增强技术。因此,基于增强传热技术的外翅片和内翅片这两种机制的整合,已经初步提出了一种外翅片和内翅片管式换热器(ASME-IGTI,论文第2006号)。 -90260 [20])。这种热交换器潜在地用于气-气热交换器,特别是用于板翅式热交换器可能不适用的高压操作条件。通常,设计任务是一个复杂的反复试验过程,并且总是存在设计结果(例如几何参数)不是最佳的可能性。因此,本文的动机是对这种热交换器(以下称为外翅管和内翅管热交换器,OFIF HE)进行优化设计。一种计算智能技术,遗传算法(GA)用于搜索和优化OFIF HE的几何参数。此类OFIF HE的最低总数量或最低总年成本分别被视为GA中的目标函数。结果表明,与以前的工作相比,优化的OFIF HE提供的总体积或总年度成本更低。该方法是通用的,可用于在不同的指定职责和设计目标下进行OFIF Hes的设计和优化。

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