Title :
MIP-Based Stochastic Security-Constrained Daily Hydrothermal Generation Scheduling
Author :
Aghaei, J. ; Karami, M. ; Muttaqi, K.M. ; Shayanfar, H.A. ; Ahmadi, A.
Author_Institution :
Dept. of Electr. & Electron. Eng., Shiraz Univ. of Technol., Shiraz, Iran
Abstract :
This paper presents the application of a mixed-integer programming (MIP) approach for solving stochastic security-constrained daily hydrothermal generation scheduling (SCDHGS). Power system uncertainties including generating units and branch contingencies and load uncertainty are explicitly considered in the stochastic programming of SCDHGS. The roulette wheel mechanism and lattice Monte Carlo simulation (LMCS) are first employed for random scenario generation wherein the stochastic SCDHGS procedure is converted into its respective deterministic equivalents (scenarios). Then, the generating units are scheduled through MIP over the set of deterministic scenarios for the purpose of minimizing the cost of supplying energy and ancillary services over the optimization horizon (24 h) while satisfying all the operating and network security constraints. To a more realistic modeling of the DHGS problem, in the proposed MIP formulation, the nonlinear valve loading effect, cost, and emission function are modeled in linear form, and prohibited operating zones (POZs) of thermal units are considered. Furthermore, a dynamic ramp rate of thermal units is used, and for the hydro plants, the multiperformance curve with spillage and time delay between reservoirs is considered. To assess the efficiency and powerful performance of the aforementioned method, a typical case study based on the standard IEEE-118 bus system is investigated, and the results are compared to each other in different test systems.
Keywords :
IEEE standards; Monte Carlo methods; hydroelectric power stations; hydrothermal power systems; integer programming; minimisation; power generation scheduling; power system security; reservoirs; stochastic programming; IEEE-118 bus system; MIP SCDHGS stochastic programming; hydro plant; lattice Monte Carlo simulation; load uncertainty; mixed integer programming; power system uncertainty; reservoir LMCS; roulette wheel mechanism; security constrained daily hydrothermal generation scheduling; time delay; Fuels; Indexes; Load forecasting; Reservoirs; Stochastic processes; Uncertainty; Wheels; Daily hydrothermal generation scheduling (DHGS); generator and branch outages; load uncertainty; security-constrained unit commitment (SCUC); stochastic programming;
Journal_Title :
Systems Journal, IEEE
DOI :
10.1109/JSYST.2013.2289771