DocumentCode :
3565889
Title :
Load forecasting on demand side by multi-regression model for operation of battery energy storage system
Author :
Hida, Yusuke ; Yokoyama, Ryuichi ; Iba, Kenji ; Tanaka, Kouji ; Yabe, Kuniaki
Author_Institution :
Waseda Univ., Tokyo, Japan
fYear :
2009
Firstpage :
1
Lastpage :
5
Abstract :
The load forecasting of the electric power has been studied extensively in the world. In many cases, the load forecast of the electric power systems is studied in the electric power company rather than demand side. The load forecast in the demand side is affected by some specific factors that are not measured and expected in advance. Although the factors/parameters are limited, it was difficult to build standard models that are applicable to various demand sides. In the era of deregulation, however, the management of customers´ load became more important. Moreover, the demand forecast with high accuracy is necessary for the proper operation of BESS (battery energy storage system) such as NAS battery. In this paper a load forecasting technique using multi-regression model is proposed. Based on five years´ records of the load in a university campus, the load for tomorrow can be forecasted. Numerical tests demonstrate the robustness and accuracy of the proposed technique.
Keywords :
battery storage plants; demand side management; electricity supply industry deregulation; energy storage; load forecasting; regression analysis; NAS battery; battery energy storage system; demand forecast; demand side management; electric power systems; electricity deregulation; load forecasting; multiregression model; Batteries; Circuit stability; Energy storage; Load flow; Load forecasting; Power system modeling; Power system stability; Predictive models; System testing; Voltage; BESS; Demand Side; Load Forecast; Multi-Regression Model; NAS Battery; Quantification Theory;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Universities Power Engineering Conference (UPEC), 2009 Proceedings of the 44th International
Print_ISBN :
978-1-4244-6823-2
Type :
conf
Filename :
5429415
Link To Document :
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