Title :
Three dimensional Pareto Optimal solution to design a hybrid stand-alone wind/PV generation system with hydrogen energy storage using multi-objective Particle Swarm Optimization
Author :
Baghaee, H.R. ; Gharehpetian, G.B. ; Kaviani, A. Kashefi
Author_Institution :
Electr. Eng. Dept., Amirkabir Univ. of Technol., Tehran, Iran
Abstract :
A hybrid Wind/Photovoltaic/hydrogen/fuel cell generation system is designed to supply power demand. The major components of the system i.e. wind turbine generators, photovoltaic arrays and DC/AC converter may be subjected to failure. Also, solar radiation, wind speed and load data are assumed to be entirely deterministic. The goal of this design is to use a novel multi-objective optimization algorithm to minimize the objective functions i.e. annualized cost of the system, loss of load expected and loss of energy expected. System costs involve investment, replacement and operation and maintenance costs. Prices are all empirical and components are commercially available. The simulation results for different cases reveal the impact of components outage on the reliability and cost of the system. So, they are directly depends on component´s reliabilities, i.e. outages lead to need for a larger and more expensive generation system to supply the load with the acceptable level of reliability. In addition, an approximate method for reliability evaluation of hybrid system is presented which lead to reduce computation time. Simulation results show the effectiveness of proposed multi-objective algorithm to solve optimal sizing problem in contrast with traditional single objective methods.
Keywords :
Pareto optimisation; fuel cell power plants; hybrid power systems; hydrogen storage; particle swarm optimisation; photovoltaic power systems; power generation economics; power generation reliability; pricing; wind power plants; DC-AC converter; approximate method; component reliability; energy expected loss; fuel cell generation system; hybrid stand-alone wind-PV generation system; hybrid system reliability evaluation; hydrogen energy storage; hydrogen generation system; investment; load data; load expected loss; maintenance costs; multiobjective particle swarm optimization algorithm; objective functions; optimal sizing problem; photovoltaic arrays; single objective methods; solar radiation; system costs; three dimensional Pareto optimal solution; wind speed; wind turbine generators; Fuel cells; Inverters; Mathematical model; Optimization; Power system reliability; Reliability engineering; Fuel cell; Multi-objective Particle Swarm Optimization; Optimal Sizing; Photovoltaic; Reliability; Wind Energy;
Conference_Titel :
Renewable Energy and Distributed Generation (ICREDG), 2012 Second Iranian Conference on
Conference_Location :
Tehran
Print_ISBN :
978-1-4673-0663-8
Electronic_ISBN :
978-1-4673-0664-5
DOI :
10.1109/ICREDG.2012.6190474