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首页> 外文期刊>IEEE Transactions on Power Systems >Optimal Energy Management Integration for a Petrochemical Plant Under Considerations of Uncertain Power Supplies
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Optimal Energy Management Integration for a Petrochemical Plant Under Considerations of Uncertain Power Supplies

机译:考虑不确定电源的石化厂最佳能源管理集成

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The electric power demands of many petrochemical plants are matched by supplies from an in-house cogeneration system and from the electric grid. However, due to the fluctuations of fuel costs, production, and electricity rates, it is necessary to balance electric supply between these two sources. In reality, uncertain effects play a very important role in this decision-making problem. One of the most important uncertainties is the occurrence of power interruptions from either one of the supply sources, which could endanger operability and reliability of plant operations. To minimize the total energy cost under consideration of unexpected power failures, we break up the solution of the problem into two layers. The outer layer is to determine the optimum contracting of three-section time-of-use rate. We use an artificial neural network regression model as a meta-model to simulate the contour plot of a nonconvex cost function. The occurrences of incidental power failures are simulated by the Monte Carlo method. The inner layer is to determine the optimum operation of the cogeneration system. Since the searching space is huge in the outer layer and the Monte Carlo simulation in the inner layer is time consuming, we implement an interactive sampling search approach to find the optimal contract capacity in this multi-local-optima problem.
机译:许多石化厂的电力需求与内部热电联产系统和电网的电力供应相匹配。但是,由于燃料成本,生产和电价的波动,有必要在这两个来源之间平衡电力供应。实际上,不确定性影响在此决策问题中起着非常重要的作用。最重要的不确定性之一是来自任一电源的电源中断的发生,这可能危及工厂运行的可操作性和可靠性。为了在考虑到意外电源故障的情况下将总能源成本降至最低,我们将问题的解决方案分为两层。外层是确定三段式使用时间率的最佳收缩。我们使用人工神经网络回归模型作为元模型来模拟非凸成本函数的等高线图。通过蒙特卡洛方法模拟了偶然电源故障的发生。内层是确定热电联产系统的最佳运行方式。由于外层的搜索空间很大,内层的蒙特卡洛模拟很费时间,因此我们实现了一种交互式采样搜索方法来找到该多局部最优问题中的最优合同能力。

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