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Quantum-based particle swarm optimization application to studies of aggregated consumption shifting and generation scheduling in smart grids

机译:基于量子的粒子群算法在智能电网总耗电量转移与发电调度研究中的应用

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Demand response programs and models have been developed and implemented for an improved performance of electricity markets, taking full advantage of smart grids. Studying and addressing the consumers' flexibility and network operation scenarios makes possible to design improved demand response models and programs. The methodology proposed in the present paper aims to address the definition of demand response programs that consider the demand shifting between periods, regarding the occurrence of multi-period demand response events. The optimization model focuses on minimizing the network and resources operation costs for a Virtual Power Player. Quantum Particle Swarm Optimization has been used in order to obtain the solutions for the optimization model that is applied to a large set of operation scenarios. The implemented case study illustrates the use of the proposed methodology to support the decisions of the Virtual Power Player in what concerns the duration of each demand response event.
机译:已经开发并实施了需求响应程序和模型,以充分利用智能电网来改善电力市场的性能。研究和解决消费者的灵活性和网络操作方案,可以设计出改进的需求响应模型和程序。本文提出的方法旨在解决需求响应程序的定义,该需求响应程序考虑了多个期间需求响应事件的发生在各个阶段之间的需求转移。优化模型的重点是使Virtual Power Player的网络和资源运营成本最小化。为了获得适用于大量操作方案的优化模型的解决方案,已使用了量子粒子群优化。已实施的案例研究说明了在与每个需求响应事件的持续时间有关的方面,如何使用提议的方法来支持Virtual Power Player的决策。

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