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A New Solution for Stochastic Optimal Power Flow: Combining Limit Relaxation with Iterative Learning Control
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  • A New Solution for Stochastic Optimal Power Flow: Combining Limit Relaxation with Iterative Learning Control
  • A New Solution for Stochastic Optimal Power Flow: Combining Limit Relaxation with Iterative Learning Control
저자명
Gong. Jinxia,Xie. Da,Jiang. Chuanwen,Zhang. Yanchi
간행물명
Journal of electrical engineering & technology
권/호정보
2014년|9권 1호|pp.80-89 (10 pages)
발행정보
대한전기학회
파일정보
정기간행물|ENG|
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이 논문은 한국과학기술정보연구원과 논문 연계를 통해 무료로 제공되는 원문입니다.
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기타언어초록

A stochastic optimal power flow (S-OPF) model considering uncertainties of load and wind power is developed based on chance constrained programming (CCP). The difficulties in solving the model are the nonlinearity and probabilistic constraints. In this paper, a limit relaxation approach and an iterative learning control (ILC) method are implemented to solve the S-OPF model indirectly. The limit relaxation approach narrows the solution space by introducing regulatory factors, according to the relationship between the constraint equations and the optimization variables. The regulatory factors are designed by ILC method to ensure the optimality of final solution under a predefined confidence level. The optimization algorithm for S-OPF is completed based on the combination of limit relaxation and ILC and tested on the IEEE 14-bus system.