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Risk-Averse Model Predictive Control Design for Battery Energy Storage Systems

机译:电池储能系统风险厌恶模型预测控制设计

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When batteries supply behind-the-meter services such as arbitrage or peak load management, an optimal controller can be designed to minimize the total electric bill. The limitations of the batteries, such as on voltage or state-of-charge, are represented in the model used to forecast the system's state dynamics. Control model inaccuracy can lead to an optimistic shortfall, where the achievable schedule will be costlier than the schedule derived using the model. To improve control performance and avoid optimistic shortfall, we develop a novel methodology for high performance, risk-averse battery energy storage controller design. Our method is based on two contributions. First, the application of a more accurate, but non-convex, battery system model is enabled by calculating upper and lower bounds on the globally optimal control solution. Second, the battery model is then modified to consistently underestimate capacity by a statistically selected margin, thereby hedging its control decisions against normal variations in battery system performance. The proposed model predictive controller, developed using this methodology, performs better and is more robust than the state-of-the-art approach, achieving lower bills for energy customers and being less susceptible to optimistic shortfall.
机译:当电池供应仪表后的仪表服务,如套利或峰值负载管理,可以设计最佳控制器以最小化总电费。电池(例如电压或充电状态)的局限性在用于预测系统状态动态的模型中表示。控制模型不准确可能会导致乐观的短缺,可实现的时间表将比使用模型的计划级联。为了提高控制性能并避免乐观的缺点,我们开发了一种新型的高性能方法,风险厌恶电池储能控制器设计。我们的方法基于两个贡献。首先,通过在全局最优控制解决方案上计算上下限制,应用更准确但非凸电池系统型号的应用。其次,通过统计上选择的余量来修改电池模型以始终低估容量,从而围绕其控制决策,防止电池系统性能的正常变化。建议的模型预测控制器使用这种方法开发,比最先进的方法更好,更强大,实现了能源客户的较低账单,并不易易于乐观的短缺。

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