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Total Site Heat Integration: Utility selection and optimisation using cost and exergy derivative analysis

机译:现场总热集成:使用成本和火用衍生分析进行公用事业选择和优化

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This paper presents a new Total Site Heat Integration utility temperature selection and optimisation method that can optimise both non-isothermal (e.g. hot water) and isothermal (e.g. steam) utilities. None of the existing methods addresses both non-isothermal and isothermal utility selection and optimisation incorporated in a single procedure. The optimisation affects heat recovery, the number of heat exchangers in Total Site Heat Exchanger Network, heat transfer area, exergy destruction (ED), Utility Cost (UC), Annualised Capital Cost (CC), and Total Annualised Cost (TC). Three optimisation parameters, UC, ED, and TC have been incorporated into a derivative based optimisation procedure where derivatives are minimised sequentially and iteratively based on the specified approach. The new optimisation procedure has been carried out for three different approaches as the combinations of optimisation parameters based on the created derivative map. The merits of the new method have been illustrated using three case studies. These case studies represent a diverse range of processing types and temperatures. Results for the case studies suggest the best derivative optimisation approach is to first optimise UC in combination with ED and then optimise TC. For this approach, TC reductions between 0.6 and 4.6% for different case studies and scenarios are achieved. (C) 2017 Elsevier Ltd. All rights reserved.
机译:本文介绍了一种新的Total Site Heat Integration实用程序温度选择和优化方法,该方法可以同时优化非等温(例如热水)和等温(例如蒸汽)公用设施。现有方法均未解决将非等温和等温效用选择和优化合并到单个过程中的问题。该优化会影响热回收,站点总热交换器网络中的热交换器数量,传热面积,火用破坏(ED),公用事业成本(UC),年度资本成本(CC)和年度总成本(TC)。三个优化参数UC,ED和TC已合并到基于导数的优化过程中,其中基于指定的方法顺序地和迭代地最小化导数。针对基于创建的导数图的优化参数的组合,针对三种不同方法执行了新的优化过程。通过三个案例研究说明了该新方法的优点。这些案例研究代表了不同类型的处理类型和温度。案例研究的结果表明,最佳的导数优化方法是先与ED结合优化UC,然后再优化TC。对于这种方法,针对不同的案例研究和方案,将TC减少了0.6%至4.6%。 (C)2017 Elsevier Ltd.保留所有权利。

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