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An interval optimization based day-ahead scheduling scheme for renewable energy management in smart distribution systems

机译:基于间隔优化的智能配电系统中可再生能源管理的日前调度方案

摘要

The integration of renewable energy generation into distribution systems has a significant influence on network power losses, nodal voltage profile and security level due to the variability and uncertainty of renewable energy generation. This paper proposes a novel interval optimization based day-ahead scheduling model considering renewable energy generation uncertainties for distribution management systems. In this approach, the forecasting errors of wind speed, solar radiation intensity and loads are formulated as interval numbers so as to avoid any need for accurate probability distribution. In this model, the total nodal voltage deviation and network power losses are optimized for the economic operation of distribution systems with improved power quality. Consequently, the order relation of interval numbers is used to transform the proposed interval optimal scheduling model into a deterministic optimization problem which can then be solved using the harmony search algorithm. Simulation results on 33-node and 119-node systems with renewable energy generation showed that considerable improvements on system nodal voltage profile and power losses can be achieved with multiple interval sources of uncertain renewable energy generation and loads.
机译:由于可再生能源发电的可变性和不确定性,将可再生能源发电集成到配电系统中会对网络功率损耗,节点电压曲线和安全级别产生重大影响。本文提出了一种新的基于间隔优化的日前调度模型,该模型考虑了可再生能源发电不确定性的配电管理系统。在这种方法中,将风速,太阳辐射强度和负荷的预测误差公式化为间隔数,从而避免了对准确概率分布的任何需要。在此模型中,总节点电压偏差和网络功率损耗针对配电系统的经济运行进行了优化,从而提高了电能质量。因此,使用区间数的顺序关系将建议的区间最优调度模型转换为确定性优化问题,然后可以使用和声搜索算法解决该问题。对具有可再生能源发电的33节点和119节点系统的仿真结果表明,使用不确定的可再生能源发电和负载的多个间隔源,可以实现系统节点电压曲线和功率损耗的显着改善。

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