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Effects of ecological water park modernization

Wybrane pełne teksty z tego czasopisma
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The paper presents the preliminary results of the modernization of the Water Park (WP) in the North-Eastern part of Poland. It consists of application of such renewable energy sources (RES) systems as solar photovoltaics (PV) and installation of solar collectors, as well as supply and exhaust ventilation with modern heat recovery and heat pump, and also recovery of sewage heat. The predicted energy performance has been compared with that achieved during the WP operation immediately after the modernization closure. On this basis, increase in the WP energy system efficiency as well as economic and ecological effects have been evaluated preliminarily.
Rocznik
Tom
Strony
26--32
Opis fizyczny
Bibliogr. 25 poz., rys., tab., wykr.
Twórcy
autor
  • Faculty of Civil and Environmental Engineering, Białystok University of Technology, Białystok, Poland
  • Office of Investment Service, Ełk, Poland
autor
  • University of Technology and Humanities, Radom, Poland
Bibliografia
  • Załuska W., 2013, Application of the photovoltaic installation, as a renewable source of energy in the aąua park in Elk, Economy and Environment, 4, No. 47 pp. 96-106.
  • Najjar Y.S.H., 2013, Hydrogen safety: The road toward green technology, International Journal of Hydrogen Energy, No. 38, pp. 10716-10728.
  • Lunda H., Marszal A., Heiselberg P., 2011, Zero energy buildings and mismatch compensation factors, Energy and Buildings, No. 43, pp. 1646-1654.
  • Wang R. Z., Zhai X.Q., 2010, Development of solar thermal technologies in China, Energy 35, pp. 4407-4416.
  • Kaplanis S. N., 2004, The design and determination of the most cos t effective PV configuration systems to meet the loads of a household, Springer, Product Engineering, pp. 473-508.
  • Kampel W., Aas B., Bruland A., 2013, Energy-use in Norwegian swimming halls, Energy and Buildings, No. 59, pp. 181-186.
  • Harrington C., Modera M., 2013, Swimming pools as heat sinks for air conditioners: California feasibility analysis, Energy and Buildings, No. 59, pp. 252-264.
  • Sun P., Yi Wu J., Zhu Wang R., Xiong Xu Y., 2011, Analysis of indoor environmental conditions and heat pump energy supply systems in indoor swimming pools, Energy and Buildings No. 43, pp. 1071-1080.
  • Chow T. T, Bai Y., Fong K. F., Lin Z., 2012, Analysis of a solar assisted heat pump system for indoor swimming pool water and space heating, Applied Energy, No. 100, pp. 309-317.
  • Baek N. C., Shin U. C., Yoon J. H., 2005, A study on the design and analysis of a heat pump system using wastewater as a heat source, Solar Energy, No. 78, pp. 427-440.
  • Fumo N., Mago P. J., Chamra L. M., 2009, Energy and economic evaluation of cooling, heating, and power systems based on primary energy, Applied Thermal Engineering, No. 29, pp. 2665-2671.
  • Mekhilef S., Saidur R., Safari A., 2011, A review on solar energy use in Industries, Renewable and Sustainable Energy Reviews, No. 15, pp. 1777-1790.
  • Hossain M. S., Saidur R., Fayaz H., Rahim N. A., Islam M. R., Ahamed J.U., Rahman M. M., 2011, Review on solar water heater collector and thermal energy performance of circulating pipe, Renewable and Sustainable Energy Reviews, No. 15, pp. 3801-3812.
  • Devabhaktuni V., Alam M., Shekara Sreenadh Reddy Depuru S., Green R. C., Nims D., Near C., 2013, Solar energy: Trends and enabling technologies, Renewable and Sustainable Energy Reviews, No. 19, pp. 555-564.
  • Branker K., Pathak M. J. M., Pearce J. M., 2011, A review of solar photovoltaic levelized cost of electricity, Renewable and Sustainable Energy Reviews, No. 15, pp. 4470-4482.
  • Celik A. N., Muneer T., Clarke P., 2009, A review of installed solar photovoltaic and thermal collector capacities in relation to solar potential for the EU-15, Renewable Energy, No. 34, pp. 849-856.
  • Chaturvedi S. K., Gagrani V. D., Abdel-Salam T. M., 2014, Solar-assisted heat pump - A Sustainable system for low-temperature water heating applications, Energy Conversion and Management, No. 77, pp. 550-557.
  • Chao S., Yiqiang J., Yang Y., Shiming D., 2012, Experimental performance evaluation of a novel dry-expansion evaporator with defouling function in a wastewater source heat pump, Applied Energy, No. 95, pp. 202-209.
  • Lazzarin R. M., Longo G. A., 1996, Comparison of heat recovery systems in public indoor swimming pools, Applied Thermal Engineering, No. 16, pp. 561-570.
  • Lee W-S., Kung C-K., 2008, Optimization of heat pump system in indoor swimming pool using particle swarm algorithm, Applied Thermal Engineering, No. 28, pp. 1647-1653.
  • Tagliafico L. A., Scarpa F., Tagliafico G., Yalsuani F., 2012, An approach to energy saving assessment of solar assisted heat pumps for swimming pool water heating, Energy and Buildings, No. 55, pp. 833-840.
  • Chow T. T., 2010, A review on photovoltaic/thermal hybrid solar technology, Applied Energy, No. 87, pp. 365-379.
  • Computer program SMA Sunny Design http://www.sma.de/en/products/plant-planning/sunny-design.html
  • Technology Roadmap Solar photovoltaic energy, International Energy Agency, (IEA) (2010), www.iea.org
  • Directive 2010/31/EU of the European Parliament and of the Council on the Energy Performance of Buildings (Recast).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-1c953299-71ab-4da4-8bf6-38d9a1279fe5
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