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首页> 外文期刊>International journal of electrical power and energy systems >Optimizing probabilistic spinning reserve by an umbrella contingencies constrained unit commitment
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Optimizing probabilistic spinning reserve by an umbrella contingencies constrained unit commitment

机译:通过伞式突发事件优化概率旋转储备,限制了机组投入

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摘要

Spinning reserve (SR) is an important resource to deal with the sudden load change, uncertain renewable energy generation, and component failures in power systems. Surplus SR will cause a higher operating cost while insufficient SR will deteriorate the system reliability level. In this paper, the SR is optimized by solving a loss of load probability constrained unit commitment (LCUC) problem. The loss of load probability (LOLP) is an appealing means to enforce the SR requirement in power systems since it can express reliability visually and explicitly. However, till now, the LCUC has not been addressed well in terms of solution accuracy and computation efficiency, due to the highly nonlinear characteristics of the LOLP. In this context, the characteristics of the LOLP are explicitly analyzed. It is found that the nonlinear LOLP constraint can be theoretically expressed as a series of linear constraints and most of the constraints can be relaxed. Then the original LCUC can be equivalently expressed by a new umbrella contingencies constrained unit commitment (UCCUC) model. An umbrella contingency identification process is proposed and the model is solved by the constraint generation technique. The proposed model possesses high computation efficiency with desirable solution accuracy, and thus it can significantly enhance the practicability of the LCUC based SR optimization method in real power systems. The proposed method was validated by case studies with the IEEE-RTS system and several larger systems.
机译:旋转储备(SR)是应对突然的负载变化,不确定的可再生能源发电以及电力系统组件故障的重要资源。 SR过多会导致较高的运营成本,而SR不足会降低系统可靠性。本文通过解决负载概率损失约束的单位承诺(LCUC)问题来优化SR。负载损失概率(LOLP)是在电力系统中强制执行SR要求的一种有吸引力的方法,因为它可以直观且明确地表达可靠性。但是,到目前为止,由于LOLP的高度非线性特性,在解决精度和计算效率方面,LCUC尚未得到很好的解决。在这种情况下,将明确分析LOLP的特性。发现非线性LOLP约束理论上可以表示为一系列线性约束,并且大多数约束可以放宽。然后,可以通过新的伞式突发事件约束单位承诺(UCCUC)模型等效地表示原始LCUC。提出了伞形意外识别过程,并通过约束生成技术对模型进行求解。该模型具有较高的计算效率和理想的求解精度,因此可以显着提高基于LCUC的SR优化方法在实际电力系统中的实用性。所提出的方法已通过案例研究与IEEE-RTS系统和一些较大的系统进行了验证。

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