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Day-Ahead Short-Term Optimization of Renewable Energy of Microgrid in Multiple Timescales

机译:在多个时间尺度中的微电网可再生能量的前方短期优化

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Microgrid is an effective way to accept distributed renewable energy, and the development and application of renewable energy can effectively solve the current energy and environmental crisis. However, due to the uncontrollable and intermittent nature of renewable energy, coupled with the complexity of the operation modes of the microgrid, it is more difficult to optimize and control its operation, which has become a key issue in the energy management of microgrid. Considering the randomness of renewable energy, a multiple timescale optimization plan is proposed, which is a two-stage optimization scheme. The scheduling period of day-ahead optimization is 24 h. The targets of load supply and cost are selected as the objective function of an independent microgrid, and the power constraint of each distributed power source is set. The particle swarm optimization algorithm is used to optimize the system. Short-term optimization optimizes the results of day-ahead optimization for a second time, and takes 15 min as a scheduling period. The objective functions of revisions to the plan of day-ahead and the cost are selected and solved by the particle swarm optimization algorithm. The results are verified by the particle swarm optimization and show rationality and feasibility of the method proposed in the paper.
机译:MicroGrid是接受分布式可再生能源的有效途径,可再生能源的开发和应用可以有效解决当前的能源和环境危机。然而,由于可再生能量的无法控制和间断性,与微电网的操作模式的复杂性相结合,更加困难优化和控制其运行,这已成为微电网的能量管理中的关键问题。考虑到可再生能源的随机性,提出了多项时间尺度优化计划,这是一种两级优化方案。前方优化的调度期为24小时。选择负载供应和成本的目标作为独立微电网的目标函数,并且设定了每个分布式电源的功率约束。粒子群优化算法用于优化系统。短期优化第二次优化日前优化的结果,并将15分钟作为调度期。修订对现日期计划的客观函数以及通过粒子群优化算法选择和解决成本。结果通过粒子群优化验证,并显示了纸张中提出的方法的合理性和可行性。

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