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Retrofit of a steam power plant using the adaptive neuro-fuzzy inference system in response to the load variation

机译:响应负荷变化,使用自适应神经模糊推理系统对蒸汽发电厂进行改造

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Artificial neuro-fuzzy inference system known as the ANFIS tool was earlier developed by authors [1] for exergoeconomic optimization of an energy system. It was shown that the ANFIS could achieve the optimal solutions of systems with reasonable accuracy, very low computation time, and less dependency on experts' knowledge. This paper aims to test a similar methodology for retrofit and real-time optimization of a large energy system in response to the load variation. A 250 MW unit in a fossil-fueled steam power plant was considered as a case study. The profit of the power plant was estimated using an exergoeconomic analysis, and it was maximized by adjusting flow rates of extracted steams that flow from turbines into feed-water heaters. The ANFIS methodology was developed in detail to optimize the profit of the proposed power plant. The advantage of the ANFIS for this purpose was compared to other alternatives such as genetic algorithm (GA) and fuzzy-inference system (FIS). It was shown that the ANFIS is much faster than the GA and considerably easier than the FIS for real-time optimization energy systems. It was shown that using ANFIS, it is possible to achieve more profit in the proposed power plant up to 320 $.hr(-1) by implication control on the flow of extracted steam; however, this figure is different at various loads of the power plant. (C) 2019 Elsevier Ltd. All rights reserved.
机译:人工神经模糊推理系统称为ANFIS工具,是由作者[1]较早开发的,用于能源系统的经济经济优化。结果表明,ANFIS可以以合理的精度,非常低的计算时间并且对专家知识的依赖性降低,来获得系统的最佳解决方案。本文旨在测试一种类似的方法,以响应负载变化对大型能源系统进行改造和实时优化。以化石燃料蒸汽发电厂的250兆瓦机组为例。发电厂的利润是使用人体经济分析法进行估算的,通过调整从涡轮机流入给水加热器的抽汽流量,可以最大程度地提高发电厂的利润。详细开发了ANFIS方法,以优化拟建电厂的利润。为此,将ANFIS的优势与其他替代方案(如遗传算法(GA)和模糊推理系统(FIS))进行了比较。结果表明,对于实时优化能源系统,ANFIS比GA快得多,并且比FIS容易得多。结果表明,使用ANFIS,通过对抽出蒸汽的流量进行隐含控制,可以在拟议的发电厂中获得最多320 $ .hr(-1)的利润。但是,该数字在电厂的各种负载下都不同。 (C)2019 Elsevier Ltd.保留所有权利。

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