DOE OSTI · 1909419
An Efficient Power Flexibility Aggregation Framework via Coordinate Transformation and Chebyshev Centering Optimization
Abstract
The large-scale integration of distributed energy resources (DERs) converts the role of a distribution system from a customer to a prosumer. In this context, the controllable DERs are expected to provide capacity support for the transmission system, which can be considered as power flexibility aggregation. Specifically, it is a process of controlling the power output of DERs to fulfill the desired capacity or flexibility. However, the power output of DERs as control variables is redundant. That is, a power flexibility command can be realized by multiple dispatch alternatives, which may hinder efficient design of control rules and flexibility evaluation schemes. Therefore, this paper introduces a conception of the artificial power flexibility controller to avoid the redundancy issue, which is a converted control variable after reconstructing the DER power region. Through this reconstruction, the DERs can be indirectly controlled by the proposed artificial power flexibility controller. In addition, a Chebyshev centering optimization model is developed to approximate the power flexibility region. At last, the proposed method is verified on an artificially-designed network with multiple DERs.
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Wang, Shengyi, Cui, Bai, Du, Liang. 2022-10-27. An Efficient Power Flexibility Aggregation Framework via Coordinate Transformation and Chebyshev Centering Optimization. https://doi.org/10.1109/pesgm48719.2022.9916799
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