TY - GEN
T1 - Assessing Frequency-Regulation Performance of Industrial Adjustable Loads Considering Communication Delays
AU - Yan, Zhou
AU - Chen, Shaocong
AU - Gan, Lei
AU - Yu, Kun
AU - Yuan, Yubo
AU - Mei, Fei
AU - Wang, Bo
N1 - Publisher Copyright:
© 2026 IEEE.
PY - 2026
Y1 - 2026
N2 - Communication delay inevitably degrades the frequency regulation performance of industrial adjustable loads, yet existing studies often neglect its impact when quantifying their performance, this paper develops an integrated delay model incorporating processing, transmission, propagation, and queuing delays, and establishes a generator-load frequency response model that captures command delay. A performance ratio index is derived from the integral of frequency deviation to quantify the relative regulation effectiveness of load-side resources. To demonstrate its applicability, a market clearing model is formulated using performance-ratio-based capacity conversion. Case studies on the IEEE 39-bus system show that communication delay compresses the effective response window and reduces performance ratios, while fast-response loads remain competitive due to their higher equivalent regulation value. The proposed framework offers a practical approach for evaluating heterogeneous frequency regulation resources under realistic communication conditions.
AB - Communication delay inevitably degrades the frequency regulation performance of industrial adjustable loads, yet existing studies often neglect its impact when quantifying their performance, this paper develops an integrated delay model incorporating processing, transmission, propagation, and queuing delays, and establishes a generator-load frequency response model that captures command delay. A performance ratio index is derived from the integral of frequency deviation to quantify the relative regulation effectiveness of load-side resources. To demonstrate its applicability, a market clearing model is formulated using performance-ratio-based capacity conversion. Case studies on the IEEE 39-bus system show that communication delay compresses the effective response window and reduces performance ratios, while fast-response loads remain competitive due to their higher equivalent regulation value. The proposed framework offers a practical approach for evaluating heterogeneous frequency regulation resources under realistic communication conditions.
KW - communication delay
KW - industrial adjustable loads
KW - market clearing
KW - performance ratio
KW - primary frequency regulation
UR - https://www.scopus.com/pages/publications/105045553007
U2 - 10.1109/EPSIC70071.2026.11590754
DO - 10.1109/EPSIC70071.2026.11590754
M3 - 会议稿件
AN - SCOPUS:105045553007
T3 - 2026 IEEE 3rd International Conference on Electrical Power Systems and Intelligent Control, EPSIC 2026
BT - 2026 IEEE 3rd International Conference on Electrical Power Systems and Intelligent Control, EPSIC 2026
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 3rd IEEE International Conference on Electrical Power Systems and Intelligent Control, EPSIC 2026
Y2 - 22 May 2026 through 24 May 2026
ER -