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Risk-Averse Model Predictive Operation Control of Islanded Microgrids

机译:岛状微电网的风险厌恶模型预测运算控制

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摘要

In this paper, we present a risk-averse model predictive control (MPC) scheme for the operation of islanded microgrids with very high share of renewable energy sources. The proposed scheme mitigates the effect of errors in the determination of the probability distribution of renewable infeed and load. This allows to use less complex and less accurate forecasting methods and to formulate low-dimensional scenario-based optimization problems, which are suitable for control applications. Additionally, the designer may trade performance for safety by interpolating between the conventional stochastic and worst case MPC formulations. The presented risk-averse MPC problem is formulated as a mixed-integer quadratically constrained quadratic problem and its favorable characteristics are demonstrated in a case study. This includes a sensitivity analysis that illustrates the robustness to load and renewable power prediction errors.
机译:在本文中,我们提出了一种风险 - 厌恶模型预测控制(MPC)方案,用于孤岛微电网的运行,具有非常高的可再生能源。该方案减轻了误差在确定可再生进料和负荷的概率分布中的影响。这允许使用更少的复杂和更准确的预测方法,并制定适合于控制应用的低维环境的优化问题。另外,设计人员可以通过在传统的随机和最坏情况MPC制剂之间插值来进行安全性能。呈现的风险厌恶MPC问题被制定为混合整数,二次约束的二次问题,并且在案例研究中证明了其有利特征。这包括敏感性分析,其说明了加载和可再生功率预测误差的鲁棒性。

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