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Comparison Between Multistage Stochastic Optimization Programming and Monte Carlo Simulations for the Operation of Local Energy Systems

机译:局部能源系统运行的多阶段随机优化规划与蒙特卡洛模拟的比较

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The paper deals with the day-ahead optimization of the operation of a local energy system consisting of photovoltaic units, energy storage systems and loads aimed to minimize the electricity procurement cost. The local energy system may refer either to a small industrial site or to a residential neighborhood. Two mixed integer linear programming models are adopted, each for a different representation of the battery: a simple energy balance constraint and the Kinetic Battery Model. The paper describes the generation of the scenarios, the construction of the scenario tree and the intraday decision-making procedure based on the solution of the multistage stochastic programming. Moreover, the daily energy procurement costs calculated by using the stochastic programming approach are compared with those calculated by using the Monte Carlo method. The comparison is repeated for two different sizes of the battery and for two load profiles.
机译:该文件涉及由光伏单元,储能系统和负载组成的本地能源系统的日间优化运行,旨在最大程度地减少电力采购成本。本地能源系统可以指的是小型工业场所,也可以指居民区。采用了两种混合整数线性规划模型,每种模型分别用于电池的不同表示:简单的能量平衡约束和动能电池模型。本文基于多阶段随机规划的解决方案,描述了方案的产生,方案树的构建以及日内决策过程。此外,将使用随机规划方法计算的每日能源采购成本与使用蒙特卡洛方法计算的每日能源采购成本进行了比较。对两种不同尺寸的电池和两种负载曲线重复比较。

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