CN

Mingyu YanYAN MINGYU

研究员(自然科学)    Supervisor of Doctorate Candidates    Supervisor of Master's Candidates

  • Professional Title:研究员(自然科学)
  • Gender:Male
  • Status:Employed
  • Department:School of Electrical and Electronic Engineering
  • Education Level:Postgraduate (Doctoral)
  • Degree:Doctoral Degree in Engineering

Paper Publications

Current position: Home > Scientific Research > Paper Publications

Multi-time scale coordinated control and scheduling of inverter-based TCLs with variable wind generation

Release time:2021-01-01
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Journal paper
Document Code:
20261386
First Author:
Meng Song
Correspondence Author:
Mohammad Shahidehpour
Co-author:
Wei Sun,Mingyu Yan,Ciwei Gao
Journal:
IEEE Transactions on Sustainable Energy
Included Journals:
SCI
Place of Publication:
United States
Discipline:
Engineering
First-Level Discipline:
Electrical Engineering
Document Type:
J
Volume:
12
Issue:
1
Page Number:
46-57
ISSN No.:
1949-3029
Key Words:
Inverter-based TCL, demand response, multi-time scale, response curve, wind generation.
DOI number:
10.1109/TSTE.2020.2971271
Date of Publication:
2021-01-01
Impact Factor:
8.31
Abstract:
To address microgrid tie flow errors caused by wind generation variability, this paper proposes and develops a multi-time scale coordinated control and scheduling strategy for inverter-based thermostatically controlled loads (TCLs). First, in hour-time scale, inverter-based TCLs with adjusting temperature set-point are modeled as virtual generators to compensate tie flow deviations in the day-ahead plan. Next, in minute-time scale, virtual batteries representing operating behaviors of inverter -based TCLs with frequency control are scheduled determined by the control of virtual generators in hour-time scale. The virtual batteries are scheduled to smooth out tie flow errors corresponding to day-ahead plan and hour-time scale schedules. The multi-time scale control methods are coordinated to employ the response potential of inverter-based TCLs and response curve-based methods are proposed to control inverter-based TCLs considering the customer privacy. The multi-time scale stochastic schedules which are based on response curves of inverter-based TCLs are coordinated to accommodate wind generation variability. Simulation results demonstrate that the microgrid tie flow errors are effectively mitigated by the proposed multi-time scale coordinated control and scheduling of inverter-based TCLs.
Links to published journals:
https://ieeexplore.ieee.org/abstract/document/8979337/authors#authors