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Hybrid PV–wind renewable energy sources for microgrid application: an overview   21

           [12] Rehman, S., Alam, M.M., Meyer, J., Al-Hadhrami, L.M., 2012. Feasibility study of a
               wind–PV–diesel hybrid power system for a village. Renewable Energy 38 (1), 258–268.
           [13] Mohammadi Ashnani, M.H., Johari, A., Hashim, H., Hasani, E., 2014. A source of renew-
               able energy in Malaysia, why biodiesel? Renewable Sustain. Energy Rev. 35, 244–257.
           [14] Dwivedi, G., Sharma, M.P., 2014. Prospects of biodiesel from Pongamia in India. Renew-
               able Sustain. Energy Rev. 32, 114–122.
           [15] Habibullah, M., Masjuki, H.H., Kalam, M.A., Rahman, S.A., Mofijur, M., Mobarak, H.M.,
               Ashraful, A.M., 2015. Potential of biodiesel as a renewable energy source in Bangladesh.
               Renewable Sustain. Energy Rev. 50, 819–834.
           [16] Gavanidous, E., Bakirtzis, A., 1992. Design of a stand alone system with renewable energy
               sources using trade off methods. IEEE Trans. Energy Convers. 7 (1), 42–48.
           [17] Bilal, B., Sambou, V., Ndiaye, P., Kébé, C., Ndongo, M., 2013. Multi-objective design of
               PV–wind–batteries hybrid systems by minimizing the annualized cost system and the loss
               of power supply probability. IEEE Int. Conf. Ind. Technol. (ICIT), 861–868.
           [18] Maheri, A., 2014. Multi-objective design optimisation of standalone hybrid wind–PV die-
               sel systems under uncertainties. Renewable Energy 66, 650–661.
           [19] Sharafi, M., ELMekkawy, T., 2014. Multi-objective optimal design of hybrid renewable
               energy systems using PSO-simulation based approach. Renewable Energy 68, 67–79.
           [20] Zhou, W., Lou, C., Li, Z., Lu, L., Yan, H., 2010. Current status of research on optimum siz-
               ing of stand-alone hybrid solar–wind power generation systems. Appl. Energy 87, 380–389.
           [21] Sinha, S., Chandel, S.S., 2014. Review of software tools for hybrid renewable energy sys-
               tems. Renewable Sustain. Energy Rev. 32, 192–205.
           [22] Abbes, D., Martinez, A., Champenois, G., 2014. Life cycle cost, embodied energy and
               loss of power supply probability for the optimal design of hybrid power systems. Math.
               Comput. Simul. 98, 46–62.
           [23] Diaf, S., Notton, G., Belhamel, M., Haddadi, M., Louche, A., 2008. Design and techno-
               economic al optimization for hybrid PV/wind system under various meteorological condi-
               tions. Appl. Energy 85, 968–987.
           [24] Hongxing, Y., Wei, Z., Chengzhi, L., 2009. Optimal design and techno-economic analysis
               of a hybrid solar–wind power generation system. Appl. Energy 86 (2), 163–169.
           [25] Naci Celik, A., 2013. Techno-economic analysis of autonomous PV-wind hybrid energy
               systems using different sizing methods. Energy Conver. Manage. 44 (12), 1951–1968.
           [26] Tina, G., Gagliano, S., Raiti, S., 2006. Hybrid solar/wind power system probabilistic mod-
               elling for long-term performance assessment. Solar Energy 80 (5), 578–588.
           [27] Rajkumar, R., Ramachandaramurthy, V., Yong, B., Chia, D., 2011. Techno-economical op-
               timization of hybrid PV/wind/battery system using Neuro-Fuzzy. Energy 36, 5148e5153.
           [28] Singh, L.W.a.C., 2009. Multicriteria design of hybrid power generation systems based on
               a modified particle swarm optimization. IEEE Trans. Energy Convers. 24 (1), 163–172.
           [29] Farahmand, M.Z., Nazari, M.E., Shamlou, S., 2017. Optimal sizing of an autonomous
               hybrid PV-wind system considering battery and diesel generator. Iranian Conference on
               Electrical Engineering (ICEE). Tehran, Iran.
           [30] Atia, R., Yamada, N., 2012. Optimization of a PV-wind-diesel system using a hybrid ge-
               netic algorithm. Electrical Power and Energy Conference (EPEC), 2012 IEEE. London,
               ON, Canada.
           [31] Zheng, X., Li, S., Zhang, T., Wang, R., 2016. Operation optimization of a PV-Wind-Stor-
               age system based on improved quantum evolution algorithm. Mechatronics and Automa-
               tion (ICMA), 2016 IEEE International Conference on Harbin, China.
           [32] Kharrich, M., Akherraz, M., Sayouti, Y., 2017. Optimal sizing and cost of a microgrid
               based in PV WIND and BESS for a School of Engineering. Wireless Technologies,
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