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Towards Concise Models of Grid Stability

机译:建立精确的电网稳定模型

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Decentral Smart Grid Control (DSGC) is a new system implementing demand response without significant changes of the infrastructure. It does so by binding the electricity price to the grid frequency. While models of DSGC exist, they rely on various simplifying assumptions. For example, researchers have assumed that the behavior of all participants in the grid is identical. In this paper we study how data-mining techniques can help to remove some of these simplifications, while keeping the representation of the insights concise. We systematically collect the various assumptions and identify questions regarding the system that are still open. Next, we run many simulations, with diverse input values. Finally, we apply decision trees to the resulting data and show that this indeed provides new insights. For example, we discover that the system can be stable even if some participants adapt their energy consumption with a high delay, or that fast adaptation is preferable for system stability.
机译:分散式智能电网控制(DSGC)是一种实现需求响应的新系统,无需对基础架构进行重大更改。它通过将电价绑定到电网频率来实现。尽管存在DSGC模型,但它们依赖于各种简化的假设。例如,研究人员假设网格中所有参与者的行为都是相同的。在本文中,我们研究了数据挖掘技术如何帮助消除其中的一些简化,同时又使见解的表达保持简洁。我们系统地收集各种假设,并确定有关仍未解决的系统问题。接下来,我们运行许多具有不同输入值的模拟。最后,我们将决策树应用于结果数据,并证明这确实提供了新的见解。例如,我们发现即使某些参与者以较高的延迟适应其能耗,系统也可以保持稳定,或者对于系统稳定性而言,快速适应更可取。

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