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Heat exchanger network retrofit throughout overall heat transfer coefficient by using genetic algorithm

机译:遗传算法在整个传热系数内的换热网络改造

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Heat integration through energy recovery is utilized to reduce energy consumption. Energy or heat recovery can be performed using heat exchanger (HE) in heat exchanger network (HEN). HEN is an arrangement of several interconnected HE, which is used to conduct heat recovery. This arrangement increases complexity of heat integration. In the existing HEN, some of the energy is wasted due to unproper HEN design. HEN retrofit can overcome this problem and increase the heat recovery in existing processes. In this research, HEN retrofit is performed by optimizing the maximum heat recovery (Q) without changing the area of heat transfer or adding new HE and the arrangement of HE in HEN. In order to fid out the maximum Q genetic algorithm (GA) is used to search the best heat transfer coefficient (U) value. In this paper, three cases of optimization scenarios are performed by some constraints considered on the HEN model. In the first optimization scenario, U is optimized without the given the maximum and minimum limits. While in the second optimization scenario, U has limitation at the minimum value, which is the value of U on the initial design data. And on the third case optimization scenario, U has limits due to availability of existing technology, which is the increase in the maximum of U using internal fins, twisted tape insert, coiled wire insert, and helical baffle. Heat recovery obtained in the first case scenario optimization results was at 13.21%, whereas the second case scenario optimization was at 9.14%, and the third case scenario optimization was at 3.60% with an internal fin technology limitations, 2.77% by limitations of twisted tape inserts technology, 7.69% with coiled wire insert technology, and 4.61% with helical baffles technology. (C) 2015 Elsevier Ltd. All rights reserved.
机译:通过能量回收进行热集成可减少能耗。可以使用热交换器网络(HEN)中的热交换器(HE)进行能量或热量回收。 HEN是几个相互连接的HE的布置,用于进行热量回收。这种布置增加了热集成的复杂性。在现有的HEN中,由于HEN设计不当而浪费了一些能量。 HEN改造可以克服此问题并增加现有过程中的热量回收。在这项研究中,通过优化最大热量回收率(Q)而不改变传热面积或添加新的HE以及HEN中HE的布置来进行HEN改造。为了找出最大Q遗传算法(GA)用于搜索最佳传热系数(U)值。在本文中,通过考虑HEN模型的一些约束条件来执行优化方案的三种情况。在第一个优化方案中,在没有给定最大和最小限制的情况下对U进行了优化。在第二个优化方案中,U的最小值受到限制,这是初始设计数据上U的值。在第三种情况下,由于现有技术的可用性,U受到了限制,即使用内部散热片,扭曲的带状插入件,盘绕的电线插入件和螺旋形挡板增加了U的最大值。在第一种情况下优化结果中获得的热回收率为13.21%,而第二种情况下优化为9.14%,第三种情况下的优化热效率为3.60%,其中内部翅片技术受到限制,而扭曲带的限制为2.77%插入技术,使用卷线插入技术的占7.69%,使用螺旋挡板技术的占4.61%。 (C)2015 Elsevier Ltd.保留所有权利。

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