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Data-driven operation performance evaluation of multi-chiller system using self-organizing maps

机译:基于自组织映射的多机组系统数据驱动运行性能评估

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Industrial plants performance evaluation has become a difficult task due to the machinery complexity. Multi-chiller systems take up big proportion of energy in food and beverage companies. Complex refrigeration generation is usually hard to evaluate as the affectation of external signals plays an important role and also exist too many control features for the facility operator. Develop a method able to detect any deviation respect the optimal operation can provide the necessary information for the purpose of inefficiencies identification and a further optimization. In this paper, data-driven methods are used in order to describe a reliable coefficient of performance indicator (COP) in several known plant conditions. Self-organizing maps (SOM) are used to recognize different operating points among the multi-variable feature space for later performance evaluation. By the analysis of COP in each operating point, the potential energy saving can be illustrated. An experimental study is performed with refrigeration plant indicating the suitability of the proposed method.
机译:由于机械的复杂性,工业厂房的性能评估已成为一项艰巨的任务。多制冷机系统在食品和饮料公司中消耗了很大的能量。通常很难评估复杂制冷的产生,因为外部信号的影响起着重要的作用,并且对于设施操作员来说也存在太多的控制功能。开发一种能够根据最佳操作检测任何偏差的方法,可以为效率低下的识别和进一步优化提供必要的信息。在本文中,使用数据驱动的方法来描述几种已知工厂条件下的可靠性能指标(COP)。自组织映射(SOM)用于识别多变量特征空间中的不同操作点,以便以后进行性能评估。通过分析每个工作点的COP,可以说明潜在的节能效果。对制冷设备进行的实验研究表明了所提出方法的适用性。

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