DocumentCode
30489
Title
Dispatch Strategy of PHEVs to Mitigate Selected Patterns of Seasonally Varying Outputs From Renewable Generation
Author
Guibin Wang ; Junhua Zhao ; Fushuan Wen ; Yusheng Xue ; Ledwich, Gerard
Author_Institution
Coll. of Mechatron. & Control Eng., Shenzhen Univ., Shenzhen, China
Volume
6
Issue
2
fYear
2015
fDate
Mar-15
Firstpage
627
Lastpage
639
Abstract
Rapid development of plug-in hybrid electric vehicles (PHEVs) brings new challenges and opportunities to the power industry. A large number of idle PHEVs can potentially be employed to form a distributed energy storage system for supporting renewable generation. To reduce the negative effects of unsteady renewable generation outputs, a stochastic optimization-based dispatch model capable of handling uncertain outputs of PHEVs and renewable generation is formulated in this paper. The mathematical expectations, second-order original moments, and variances of wind and photovoltaic (PV) generation outputs are derived analytically. Incorporated all the derived uncertainties, a novel generation shifting objective is proposed. The cross-entropy (CE) method is employed to solve this optimal dispatch model. Multiple patterns of renewable generation depending on seasons and renewable market shares are investigated. The feasibility and efficiency of the developed optimal dispatch model, as well as the CE method, are demonstrated with a 33-node distribution system.
Keywords
distributed power generation; entropy; hybrid electric vehicles; photovoltaic power systems; power generation dispatch; power markets; stochastic programming; wind power plants; 33-node distribution system; CE method; PHEV dispatch strategy; PV generation; cross-entropy method; distributed energy storage system; generation shifting objective; mathematical expectations; photovoltaic generation; plug-in hybrid electric vehicles; power industry; renewable market shares; second-order original moments; selected pattern mitigation; stochastic optimization-based dispatch model; unsteady renewable generation outputs; wind variances; Batteries; Degradation; Mathematical model; Uncertainty; Vehicles; Wind speed; Cross-entropy (CE) method; photovoltaic power; plug-in hybrid electric vehicles (PHEVs); stochastic optimization; wind power;
fLanguage
English
Journal_Title
Smart Grid, IEEE Transactions on
Publisher
ieee
ISSN
1949-3053
Type
jour
DOI
10.1109/TSG.2014.2364235
Filename
6949130
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