An integrated energy system (with photovoltaic (PV) and fuel cell (FC) for building) is proposed and assessed in term of its energy self-sufficiency rate in seven cities (Nagoya, Toyota, Tajimi, Takayama, Ogaki, Hamamatsu, Shizuoka) in Tokai region in Japan in this paper. In this work, it is considered that the electricity requirement of the building for household users is provided by a building integrated photovoltaic (BIPV) system and the gap between the energy demand and BIPV supply is fulfilled by the FC. The FC is powered by the electrolytic H 2 produced when PV power was in surplus. Based on the study of applying the proposed system in seven cities, which clarifies the effectiveness of the integrated BIPV, electrolytic H 2 and FC power generation system, a universal system model has been developed in this paper. It has been observed that the monthly power production from BIPV as well as FC system are higher in spring and summer, while they are both lower in autumn and winter at all considered locations. The self-sufficiency rate of the FC system is higher with decreasing households’ number and it has been observed that 16 is the most appropriate number of households in a building, whose electricity demand could be fully covered by the integrated PV and FC system. Due to its climate condition, Hamamatsu is the best city in the region for installing the proposed system. The correlation between the households’ number and self-sufficiency rate of the FC system per solar PV installation area can be expressed by the regression curve in the form of y = ax -b well.
KeywordsSmart BuildingPhotovoltaicsH<sub>2</sub>Produced by Water ElectrolysisPolymer Electrolyte Fuel CellSelf-Sufficiency Rate
Agency for Natural Resources and Energy (2017) Energy White Paper 2017. http://www.enecho.meti.go.jp/about/whitepaper/2017pdf/whitepaper2017pdf_2_2.pdf
Jelle, B.P. (2016) Building Integrated Photovoltaics: A Concise Research Pathways. Energies, 9, 1-30.
Tripathy, M., Sadhu, P.K. and Panda, S.K. (2016) A Critical Review on Building Integrated Photovoltaic Products and Their Applications. Renewable and Sustainable Energy Reviews, 61, 451-465. https://doi.org/10.1016/j.rser.2016.04.008
Zomer, C., Nobre, A., Reindl, T. and Ruther, R. (2016) Shading Analysis for Rooftop BIPV Embedded in a High-Density Environment: A Case Study in Singapore. Energy and Buildings, 121, 159-164. https://doi.org/10.1016/j.enbuild.2016.04.010
Humada, A.M., Hojabri, M., Hamada, H.M. and Samsuri, F.B. (2016) Performance Evaluation of Two Technologies (c-Si and CIS) for Building Integrated Photovoltaic Based on Tropical Climate Condition: A Case Study in Malaysia. Energy and Buildings, 119, 233-241. https://doi.org/10.1016/j.enbuild.2016.03.052
Davi, G.A., Caamano-Martin, E., Ruther, R. and Solano, J. (2016) Energy Performance Evaluation of a Net Plus-energy Residential Building with Grid-Connected Photovoltaics System in Brazil. Energy and Buildings, 120, 19-29. https://doi.org/10.1016/j.enbuild.2016.03.058
Burg, B.R., Ruch, P., Paredes, S. and Michel, B. (2017) Effects of Radiative Forcing of Building Integrated Photovoltaic Systems in Different Urban Climates. Solar Energy, 147, 399-405. https://doi.org/10.1016/j.solener.2017.03.004
Lamnatou, C., baig, H., Chemisana, D. and Malick, T.K. (2017) Dielectric-Based 3D Building-Integrated Concentrating Photovoltaic Modules: An Environmental Life-Cycle Assessment. Energy and Buildings, 138, 514-525. https://doi.org/10.1016/j.enbuild.2016.12.038
Sagani, A., Mihelis, J. and Dedoussis, V. (2017) Techno-Economic Analysis and Life-Cycle Environmental Impacts of Small-Scale Building-Integrated PV Systems in Greece. Energy and Buildings, 139, 277-290. https://doi.org/10.1016/j.enbuild.2017.01.022
Davi, G.A., Asiain, J.L., Solano, J. and Caamano-Martin, E. (2017) Energy Refurbishment of an Office Building with Hybrid Photovoltaic System and Demand-Side Management. Energies, 10, 1117. https://doi.org/10.3390/en10081117
Uddin, K., Gough, R., Radcliffe, J., Marco, J. and Jennings, P. (2017) Techno-Economic Analysis of the Viability of Residential Photovoltaic Systems Using Lithium-Ion Batteries for Energy Storage in the United Kingdom. Applied Energy, 206, 12-21. https://doi.org/10.1016/j.apenergy.2017.08.170
Kumagaki, H. (2016) Renewable Energy Mass Transportation Based on Methanation Technology. Preprints of the 3rd Hydrogen Energy Lecture Meeting of the Japan Society Energy, Tokyo, 16 December 2016, 24.
Gonzalez, E.L., Llerena, F.I., Perez, M.S., Iglesias, F.R. and Macho, J.G. (2015) Energy Evaluation of a Solar Hydrogen Storage Facility: Comparison with Other Electrical Energy Storage Technologies. International Journal of Hydrogen Energy, 40, 5518-5525. https://doi.org/10.1016/j.ijhydene.2015.01.181
Marchenko, O.V. and Solomin, S.V. (2017) Modeling of Hydrogen and Electrical Energy Storage in Wind/PV Energy System on the Lake Baikal Coast. International Journal of Hydrogen Energy, 42, 9361-9370. https://doi.org/10.1016/j.ijhydene.2017.02.076
Barumann, L. and Boggasch, E. (2016) Experimental Assessment of Hydrogen Systems and Vanadium-Redox-Batteries for Increasing the Self-Consumption of Photovoltaic Energy in Buildings. International Journal of Hydrogen Energy, 41, 740-751. https://doi.org/10.1016/j.ijhydene.2015.11.109
Khalid, F., Dincer, I. and Rosen, M.A. (2016) Analysis and Assessment of an Integrated Hydrogen Energy System. International Journal of Hydrogen Energy, 41, 7960-7967. https://doi.org/10.1016/j.ijhydene.2015.12.221
Singh, A., Baredar, P. and Gupta, B. (2017) Techno-Economic Feasibility Analysis of Hydrogen Fuel Cell and Solar Photovoltaic Hybrid Renewable Energy System for Academic Research Building. Energy Conversion and Management, 145, 398-414. https://doi.org/10.1016/j.enconman.2017.05.014
Nishimura, A., Kitagawa, S., Hirota, M. and Kolhe, L.M. (2017) Energy Assessment of Building Integrated Photovoltaics and Fuel Cell Systems: Design Study for Buildings(s) of Mie, Japan. Smart Grid and Renewable Energy, 8, 129-144. https://doi.org/10.4236/sgre.2017.85009
Chubu Electric Power (2014) The Irradiance Data of the Project “PV300” (Electric Data Base).
The Society of Heating, Air-Conditioning and Sanitary of Engineering of Japan (1998) Assessment, Plan and Design of Co-Generation System by City Gas. Maruzen, Tokyo.
Nishimura, A., Ito, T., Kakita, M., Murata, J., Ando, T., Kamada, Y., Hirota, M. and Kolhe, M. (2014) Impact of Building Layout on Wind Turbine Power Output in the Built Environment: A Case Study of Tsu City. Journal of the Japan Institute of Energy, 84, 315-322. https://doi.org/10.3775/jie.93.315
Ministry of Internal Affairs and Communications (2017) Dwelling by Area of Floor Space (6 Groups) an Tenure of Dwelling (2 Groups)—Japan, 3 Major Metropolitan Areas, Prefectures and Major Cities (1998-2008). http://www.e-stat.go.jp/SGI/estat/ListE.do?bid=000001029530&code=0
Nishimura, A., Kitagawa, S., Hirota, M. and Hu, E. (2017) Assessment on Energy Self-Sufficiency Rate for Building Integrated Photovoltaics and Fuel Cell System in Japan. Smart Grid and Renewable Energy, 8, 195-211. https://doi.org/10.4236/sgre.2017.86013
New Energy and Industrial Technology Development Organization of Japan (2017) Guideline on Field Test Project of Photovoltaic Power Generation for Design, Construction and System. http://www.nedo.go.jp/content/100110086.pdf
Panasonic (2018) Power Conditioner with High Conversion Efficiency. https://sumai.panasonic.jp/solar/need_power_conditioners.html
Kawamoto, K., Nakatani, S., Hagihara, R. and Nakai, T. (2002) High Efficiency HIT Solar Cell. Sanyo Technical Review, 34, 111-117.
Oozeki, T., Izawa, T., Otani, K., Tsuzuki, K., Koike, H. and Kurokawa, K. (2005) An Evaluation Method for PV Systems by Using Limited Data Item. IEEJ Transaction on Power Energy, 125, 1299-1307. https://doi.org/10.1541/ieejpes.125.1299
IHT (2018) Technical Information/Benefits of IHT’s Electrolysers. http://www.iht.ch/technologie/electrolysis/industry/technical-information-benefits-electrolysers.html
Kato, T. (2015) Possibility of Hydrogen Production from Renewable Energy. Journal of Japan Institute of Technology, 94, 7-18.
Panasonic (2018) Specification of ENEFARM. https://panasonic.biz/appliance/FC/house_07.html
Japan Meteorological Agency (2018) Past Meteorological Data Search. http://www.data.jma.go.jp/obd/stats/etrn/index.php