DocumentCode
48736
Title
MPC-Based Voltage/Var Optimization for Distribution Circuits With Distributed Generators and Exponential Load Models
Author
Zhaoyu Wang ; Jianhui Wang ; Bokan Chen ; Begovic, Miroslav M. ; Yanyi He
Author_Institution
Sch. of Electr. & Comput. Eng., Georgia Inst. of Technol., Atlanta, GA, USA
Volume
5
Issue
5
fYear
2014
fDate
Sept. 2014
Firstpage
2412
Lastpage
2420
Abstract
This paper proposes a model predictive control (MPC)-based voltage/var optimization (VVO) technique considering the integration of distributed generators and load-to-voltage sensitivities. The paper schedules optimal tap positions of on-load tap changer and switch statuses of capacitor banks based on predictive outputs of wind turbines and photovoltaic generators. Compared with previous efforts on VVO which used constant-power load model, the exponential load model is used to capture the various load behaviors in this paper. Different customer types such as industrial, residential, and commercial loads are also considered. The uncertainties of model prediction errors are taken into account in the proposed model. A scenario reduction technique is applied to enhance a tradeoff between the accuracy of the solution and the computational burden. The MPC-based VVO problem is formulated as a mixed-integer nonlinear program with reduced scenarios. Case studies show the effectiveness of the proposed method.
Keywords
distributed power generation; integer programming; nonlinear programming; on load tap changers; photovoltaic power systems; power capacitors; power distribution control; power generation control; power generation scheduling; predictive control; wind turbines; MPC-based voltage-Var optimization; VVO technique; capacitor banks; constant-power load model; distributed generators; distribution circuits; exponential load models; load-to-voltage sensitivity; mixed-integer nonlinear program; model prediction error uncertainty; model predictive control; on-load tap changer; optimal tap position scheduling; photovoltaic generators; predictive outputs; scenario reduction technique; wind turbines; Capacitors; Load modeling; Mathematical model; Predictive control; Reactive power; Voltage control; Distributed generators; exponential load model; mixed-integer program; model predictive control; scenario reduction; voltage/var optimization;
fLanguage
English
Journal_Title
Smart Grid, IEEE Transactions on
Publisher
ieee
ISSN
1949-3053
Type
jour
DOI
10.1109/TSG.2014.2329842
Filename
6887308
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