Home / Journals / ENERGY / Online First / doi:10.32604/ee.2026.089181
Special Issues

Open Access

ARTICLE

Risk-Aware Multi-Timescale Scheduling and Distributed Event-Triggered Control for Overload Mitigation in PV-Rich Distribution Networks

Guangyuan Xu1, Wei Wang1,*, Biao Shi2, Li Zhang1, Yahang Cheng2, Feiyan Li2
1 State Grid Anhui Electric Power Co., Ltd., Hefei, China
2 State Grid Fuyang Power Supply Company, Fuyang, China
* Corresponding Author: Wei Wang. Email: email
(This article belongs to the Special Issue: Anti-misoperation Control and Risk Prevention for New Power Systems)

Energy Engineering https://doi.org/10.32604/ee.2026.089181

Received 15 July 2026; Accepted 14 September 2026; Published online 22 September 2026

Abstract

High-penetration distributed photovoltaic (PV) integration improves renewable utilization in distribution networks, but abnormal PV ramps may also be transformed into feeder active-power overloads when coupled with load variation and feeder power-flow baselines. To address this issue, this paper proposes a risk-aware multi-timescale scheduling and distributed event-triggered control framework for PV-rich distribution networks. The proposed framework links deterministic forecasts, probabilistic risk information, and real-time measurements with day-ahead scheduling, intraday rolling correction, and real-time distributed control, respectively. In the day-ahead stage, multiple flexible resources are economically dispatched based on point forecasts to establish the operating baseline and mitigate foreseeable overloads. To quantify residual PV uncertainty, a risk-boundary increment is defined as the difference between the probabilistic and point-forecast feeder load rate, with the former derived from a probability prediction method based on quantile regression forest (QRF). The resulting risk-boundary increment is then converted into the adjustable reserve margin for intraday rolling correction, enabling risk-adaptive flexibility allocation. In the real-time stage, a distributed event-triggered controller is activated by measured feeder overloads to suppress residual minute-scale violations while reducing unnecessary communication. Case studies on the IEEE 33-bus system show that intraday correction reduces the feeder overload rate from 47.9% to 1.04%, while real-time control eliminates the remaining overloads. Event-triggered communication retains the same control performance with only 2.2% of the communication required by periodic control. A preliminary test on an actual regional distribution network further supports the transferability of the proposed framework.

Keywords

Abnormal PV fluctuations; active distribution network; multi-timescale coordination; flexible resources; event-triggered control; line overload mitigation
  • 3

    View

  • 0

    Download

  • 0

    Like

Share Link