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Multiobjective capacity planning of photovoltaics in smart electrical energy networks: improved normal boundary intersection method

机译:智能能源网络中光伏发电的多目标容量规划:改进的法向边界相交方法

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摘要

Incentive-based regulations, toward higher performance networks, are the main driver for minimising losses in distribution systems. On the other hand, more renewable generation is needed to achieve environmental targets. Hence, a multiobjective model is introduced in this study seeking to minimise energy losses as well as maximise renewable generation in radial distribution systems (RDSs). Two alternative control strategies of future smart grids such as reactive power management using adaptive power factor control and coordinated voltage control are considered in the optimisation problem. The problem is subjected to the various technical constraints such as voltage limits, thermal limits and reactive capability limits of photovoltaic (PV) penetration, power factor regulations and underload tap changer adjustment. Also, the uncertainties of load and renewable generation are considered, too. Then, the obtained non-linear programming problem is relaxed and reformulated as a well-suited and computationally efficient second-order cone programming problems. To obtain more efficient and evenly distributed Pareto set to help decision-making process, a modified normal boundary intersection method is introduced for solution methodology. The implementation of the proposed framework on IEEE 33-bus RDSs shows the gains that the flexibility provided by innovative control strategies can have on energy loss reduction and PV capacity.
机译:面向高性能网络的基于激励的法规是最大程度地降低配电系统损失的主要动力。另一方面,需要更多的可再生能源发电来实现环境目标。因此,在这项研究中引入了一个多目标模型,以寻求在径向配电系统(RDS)中最大程度地减少能量损失以及最大程度地增加可再生能源发电量。在优化问题中考虑了未来智能电网的两种替代控制策略,例如使用自适应功率因数控制和协调电压控制的无功功率管理。该问题受到各种技术约束的影响,例如电压极限,热极限和光伏(PV)穿透的无功能力极限,功率因数规定和欠载分接开关调节。此外,还考虑了负荷​​和可再生能源发电的不确定性。然后,将获得的非线性规划问题放宽并重新表述为一个非常合适且计算效率高的二阶锥规划问题。为了获得更有效和均匀分布的Pareto集以帮助决策过程,引入了一种改进的正态边界相交方法作为求解方法。 IEEE 33总线RDS上建议框架的实施表明,创新的控制策略所提供的灵活性可以在降低能耗和降低PV容量方面获得收益。

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