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Hour-Ahead Price Based Energy Management Scheme for Industrial Facilities

机译:工业设施按小时计价的能源管理方案

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摘要

Price-based demand response (PBDR) offers a significant opportunity for electricity consumers to dynamically balance their energy demand in response to time-varying electricity prices, and therefore ease the burden on the grid during peak times. However, despite being the primary energy consumers, there is little research carried out on implementing PBDR in industrial facilities, especially on real-time price (RTP) based DR. In this study, we propose a DR scheme based on hour-ahead RTP for industrial facilities. The scheme implements an artificial neural network based price forecasting model to forecast unknown future prices to support global time horizon optimization. Based on the forecasting price, the energy cost minimization problem is formulated by mixed integer linear programming. This paper includes a practical case study of the whole process of steel powder manufacturing for performance analysis. The results show that the proposed scheme is capable of balancing the energy demand and reducing energy costs while satisfying production targets.
机译:基于价格的需求响应(PBDR)为电力消费者提供了一个重要的机会,可以根据时变的电价动态平衡其能源需求,从而减轻高峰时段的电网负担。然而,尽管是主要的能源消耗者,但在工业设施中实施PBDR的研究很少,尤其是基于实时价格(RTP)的DR。在这项研究中,我们提出了一种基于小时前RTP的工业设施DR方案。该方案实现了基于人工神经网络的价格预测模型,以预测未知的未来价格,以支持全球时间范围的优化。在预测价格的基础上,通过混合整数线性规划提出了能源成本最小化问题。本文包括对钢粉制造全过程的实际案例研究,以进行性能分析。结果表明,该方案能够在满足生产目标的同时,平衡能源需求,降低能源成本。

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