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A Hybrid Methodology for Combined Interplant Heat, Water, and Power Integration

机译:组合综合移植热,水和电力集成的混合方法

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The growing desire to improve resource efficiency and environmental impact of industrial processes is directly linked to optimal management of heat, mass and power flows. The concept of industrial symbiosis tackles this issue by proposing interplant heat recovery and resource transfer which can bring economical and environmental benefits to each party. A comprehensive methodology is required which can easily be incorporated in the planning of industrial clusters. Therefore, a generic hybrid mixed integer linear programming superstructure has been developed to address simultaneous heat, water, and power optimization in interplant operations. Additional concepts are included in the previously-proposed water network superstructure (Kermani et al., 2017) to account for the issues related to interplant heat and mass exchange. A cold utility superstructure is included in the water network while a steam network superstructure is modified to better represent the feedwater heaters and heat recovery opportunities. The proposed methodology is applied to an industrial case study. Results exhibit a large potential for synergies among industrial sites, even in disparate sectors, and emphasize the importance of a generic approach.
机译:越来越多的改善工业过程的资源效率和环境影响的愿望与热量,质量和功率流动的最佳管理直接相关。工业共生的概念通过提出流动的热回收和资源转移来解决这一问题,这可以为各方带来经济和环境效益。需要一种全面的方法,可以轻松纳入产业集群的规划中。因此,已经开发了一种通用的混合混合整数线性编程上部结构以解决中间操作中的同时热量,水和功率优化。额外的概念包括在先前提出的水网络上层建筑(Kermani等,2017)中,以考虑与植物热量和大规模交换有关的问题。在水网中包括冷电效用上部结构,同时改变蒸汽网络上部结构以更好地代表进给水加热器和热回收机会。该提出的方法适用于工业案例研究。结果展示了工业部位之间的协同效应潜力,即使在不同的部门,也强调了通用方法的重要性。

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