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Synthesis and simultaneous MINLP optimization of heat exchanger network, steam Rankine cycle, and organic Rankine cycle

机译:换热网络,蒸汽朗肯循环和有机朗肯循环的合成及同时MINLP优化

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摘要

Process plants are typically energy intensive plants and pollutant emission contributors. Energy integration in process plants effectively reduces energy consumption and pollutant emission. In a traditional energy integration concept, a heat exchanger network (HEN) is typically constructed for heat recovery between process streams. However, a large amount of medium-to-low-temperature surplus heat usually occurs in hot streams, where further internal heat integration is impossible, and is inevitably cooled by external cold source. Integrating organic Rankine cycle (ORC) into the process HEN is an effect way in further enhancing the energy recovery. However, the HEN, utility plant, and ORC are traditionally designed and optimized separately or sequentially, resulting in local energy integration or optimization. In the present study, ORC is integrated into a HEN to generate power energy from surplus heat. An improved superstructure is constructed and a mixed integer non-linear programming model is developed for the synthesis and simultaneous optimization of the integration system containing process-process HEN, hot utility-cold stream HEN, process hot stream-ORC HEN, steam utility plant, and cold utility plant. Two case studies of different scale in complexity are elaborated to validate the proposed methodology. Sensitivity analysis of carbon tax and fuel price are finally conducted.
机译:加工厂通常是能源密集型工厂和污染物排放的贡献者。加工厂中的能源整合有效地降低了能源消耗和污染物排放。在传统的能量集成概念中,通常构建一个热交换器网络(HEN)以回收过程流之间的热量。但是,通常在热流中会产生大量的中低温余热,在这种情况下,进一步的内部热集成是不可能的,并且不可避免地被外部冷源冷却。将有机朗肯循环(ORC)整合到过程HEN中是进一步提高能量回收率的有效途径。但是,HEN,公用设施和ORC通常是分别或顺序设计和优化的,从而导致局部能源集成或优化。在本研究中,将ORC集成到HEN中以从余热中产生电能。构建了改进的上部结构,并开发了一个混合整数非线性规划模型,用于集成和同时优化包含过程-过程HEN,热公用事业-冷物流HEN,过程热物流-ORC HEN,蒸汽公用事业厂,和冷水厂。详细阐述了两个复杂程度不同的案例研究,以验证所提出的方法。最后对碳税和燃油价格进行了敏感性分析。

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