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Genetic algorithms and non-intrusive energy management system based economic dispatch for cogeneration units

机译:基于遗传算法和非侵入式能源管理系统的热电联产机组经济调度

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摘要

By integrating neural networks (NNs) with turn-on transient energy analysis, this work attempts to recognize demand load, including the buyers' load on the power systems and the internal load on the cogeneration systems, thereby increasing the recognition accuracy in a non-intrusive energy management (NIEM) system. Analysis results reveal that an NIEM system and a new method that is based on genetic algorithms (GA) can effectively manage energy demand in an optimal economic dispatch for cogeneration systems with multiple cogenerators, which generate power for buyers. Furthermore, the global optimum of economic dispatch under typical environmental and operating constraints of cogeneration systems is found using the proposed approach, which is based on genetic algorithms. Moreover, the use of the proposed GA-based method for economic dispatch can substantially reduce computational time, fuel cost, power cost and air pollution.
机译:通过将神经网络(NN)与开启的瞬态能量分析相集成,这项工作试图识别需求负载,包括购买者在电力系统上的负载和热电联产系统上的内部负载,从而提高非电力系统的识别精度。介入式能源管理(NIEM)系统。分析结果表明,NIEM系统和基于遗传算法(GA)的新方法可以有效地管理具有多个热电联产系统的热电联产系统的最优经济调度中的能源需求,从而为买方提供电力。此外,使用所提出的基于遗传算法的方法,可以发现热电联产系统在典型环境和运行约束下的经济调度的全局最优。而且,将所提出的基于遗传算法的方法用于经济调度可以大大减少计算时间,燃料成本,电力成本和空气污染。

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