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Heat recovery networks synthesis of large-scale industrial sites: Heat load distribution problem with virtual process subsystems

机译:大型工业场所的热回收网络综合:虚拟过程子系统的热负荷分配问题

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This paper presents a targeting strategy to design a heat recovery network for an industrial plant by dividing the system into subsystems while considering the heat transfer opportunities between them. The methodology is based on a sequential approach. The heat recovery opportunity between process units and the optimal flow rates of utilities are first identified using a Mixed Integer Linear Programming (MILP) model. The site is then divided into a number of subsystems where the overall interaction is resumed by a pair of virtual hot and cold stream per subsystem which is reconstructed by solving the heat cascade inside each subsystem. The Heat Load Distribution (HLD) problem is then solved between those packed subsystems in a sequential procedure where each time one of the subsystems is unpacked by switching from the virtual stream pair back into the original ones. The main advantages are to minimize the number of connections between process subsystems, to alleviate the computational complexity of the HLD problem and to generate a feasible network which is compatible with the minimum energy consumption objective. The application of the proposed methodology is illustrated through a number of case studies, discussed and compared with the relevant results from the literature.
机译:本文提出了一种针对性策略,旨在通过将系统划分为子系统,同时考虑它们之间的传热机会,来为工厂设计热回收网络。该方法基于顺序方法。首先使用混合整数线性规划(MILP)模型确定过程单元之间的热回收机会和公用事业的最佳流速。然后将该站点划分为多个子系统,其中每个子系统通过一对虚拟的冷热流恢复整体交互,通过解决每个子系统内部的热级联来重建该虚拟冷热流。然后,通过顺序过程解决了这些打包子系统之间的热负荷分配(HLD)问题,其中每次从虚拟流对切换回原始流中的一个子系统时,就对其中一个子系统进行解包。主要优点是最大程度地减少了处理子系统之间的连接数,减轻了HLD问题的计算复杂度,并生成了与最小能耗目标兼容的可行网络。通过大量案例研究说明了所提出方法的应用,并与文献中的相关结果进行了讨论和比较。

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