约束约束对配电网可再生DG规划过程的影响

S. Kandil, H. Farag
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引用次数: 2

摘要

本文研究了规划算法的约束约束对配电网中基于可再生能源的分布式发电机组最优配置和规模的影响。所研究的规划算法依赖于开发系统组件的多状态概率模型,并将这些模型组合成一个描述所有可能系统状态的综合模型。考虑了几个技术限制,包括变电站的最大反向功率、可再生DG连接的最大数量、电压技术限制、电缆和架空线路的热限制以及电压不平衡。本文研究了可再生能源DG分配约束,研究了这些约束对目标函数(也称为影子价格)的影响。以123总线的IEEE测试系统为例,验证了该算法的有效性。将可再生DG分配问题表述为一个非线性混合整数规划问题,并在GAMS环境下求解。
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Impacts of binding constraints on the planning process of renewable DG in distribution systems
This paper investigates the impacts of binding constraints of the planning algorithms on the optimal allocation and sizing of renewable based distributed generation (DG) units in distribution networks. The planning algorithm under study depends on developing multi-state probabilistic models for system components and combining these models in one comprehensive model that describes all possible system states. Several technical constraints are taken into consideration, including maximum reverse power at the substation, maximum number of renewable DG connections, voltage technical limits, thermal limits of cables and overhead lines, and voltage unbalance. In this work, the renewable DG allocation binding constraints are studied, where the effect of these constraints on the objective function, also known as shadow price, is investigated. The 123-bus IEEE test system has been utilized in a case study to show the effectiveness of the proposed algorithm. The renewable DG allocation problem is formulated as a nonlinear mixed-integer programming and solved in GAMS environment.
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