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Neural-network-based optimization for economic dispatch of combined heat and power systems

机译:基于神经网络的综合发电经济派遣优化

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摘要

One of the major research areas in combined heat and power (CHP) systems is optimal dispatch, which involves the minimization of the operating cost. In economic dispatch, it is important to use a model that accurately simulates the performance of the power and heat generation equipment. However, physics-based characteristic models require considerable time for the analysis, so it is hard to apply them to the optimization of dispatch schedules. This study introduced a neural network model, which was built based upon the simulation results of a physics-based model, to optimize a CHP system. The novel method was used to optimize the operation schedule of a system consisting of a gas turbine, steam turbine bottoming cycle, compressed air energy storage, and a boiler. The schedule was optimized to minimize the operation cost per day and according to the power and heating demand of users. The results showed that the introduction of the neural network reduced the time required for the system analysis by more than 7000 times. Furthermore, the optimization results confirmed the importance of accurately predicting the performance of each device using the physics-based model. This study contributes to the reduction in computation time and improvement of optimization accuracy.
机译:综合发热和功率(CHP)系统中的主要研究领域之一是最佳调度,涉及最小化运营成本。在经济调度中,重要的是使用准确模拟电源和发热设备性能的模型。然而,基于物理的特性模型需要相当大的时间进行分析,因此很难将它们应用于调度时间表的优化。本研究引入了一种神经网络模型,该模型基于基于物理的模型的仿真结果构建,以优化CHP系统。该新方法用于优化由燃气轮机,汽轮机底部,压缩空气储存和锅炉组成的系统的操作时间表。计划进行了优化,以最大限度地减少每天的运营成本,并根据用户的电力和供暖需求。结果表明,神经网络的引入减少了系统分析所需的时间超过7000倍。此外,优化结果证实了使用基于物理的模型准确地预测每个设备性能的重要性。该研究有助于减少计算时间和优化精度的提高。

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