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Designing a Small Water Power Plant in Poland in the Aspect of Minimizing the Impact on River Ecosystem

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
A small hydro-power plant designing in aspect of current legislation is an interdisciplinary problem because of the fact that efficiency priority is not so important as ecological one. In this article the regulations concerning permissions for plant operation are discussed. The small hydro-power plant designing criteria are presented in the aspect of a plant impact on the river ecosystem.
Rocznik
Tom
Strony
332--345
Opis fizyczny
Bibliogr. 17 poz., rys., tab.
Twórcy
autor
  • Emission Research Laboratory, Department of Automotive Engineering, Faculty of Mechanical Engineering, Wrocław University of Science and Technology, Poland
  • Emission Research Laboratory, Department of Automotive Engineering, Faculty of Mechanical Engineering, Wrocław University of Science and Technology, Poland
  • Emission Research Laboratory, Department of Automotive Engineering, Faculty of Mechanical Engineering, Wrocław University of Science and Technology, Poland
  • Emission Research Laboratory, Department of Automotive Engineering, Faculty of Mechanical Engineering, Wrocław University of Science and Technology, Poland
  • Emission Research Laboratory, Department of Automotive Engineering, Faculty of Mechanical Engineering, Wrocław University of Science and Technology, Poland
  • Emission Research Laboratory, Department of Automotive Engineering, Faculty of Mechanical Engineering, Wrocław University of Science and Technology, Poland
Bibliografia
  • Augustyn, L. (2010). The influence of the Czorsztyn-Niedzica and Sromowce Wyżne hydroelectric power station on the ichthyofauna of the Dunajec River in the Pieniny region. Monografie Pienińskie, 2, 227-239 (in Polish).
  • Basiński, K. (2015). Problems with renewing water permits for SHPPs in the light of new legal conditions. Energetyka Wodna (in Polish).
  • Dedić-Jandrek, H., Nižetić, S. (2019). Small scale archimedes hydro power plant test station: Design and experimental investigation. Journal of Cleaner Production, 231, 756-771. DOI: 10.1016/j.jclepro.2019.05.234
  • Hunt, J.D., Zakeri, B., Giulietti, De Barros, A., Filho, W.L., Delavald, Marques, A., Barbosa, P., Smith, Schneider, P., Farenzena, M. (2021). Buoyancy Energy Storage Technology: An energy storage solution for islands, coastal regions, offshore wind power and hydrogen compression. Journal of Energy Storage, 40. DOI: 10.1016/j.est.2021.102746
  • Khudhiri, N., Dol, S., Khan, M. (2018). Design of hydro-power plant for energy generation for a mid-size farm with insufficient water distribution networks. Advances in Science and Engineering Technology International Conferences (ASET). DOI: 10.1109/ICASET.2018.8376799
  • Malicka, E. (2018). Hydro-answer: small hydropower plants – however, not so little will they come into being. Towarzystwo Rozwoju Małych Elektrowni Wodnych, REO (in Polish).
  • Piper, A., Rosewarne, P.J., Wright, R.M., Kemp, P.S. (2018). The impact of an Archimedes screw hydropower turbine on fish migration in a lowland river. Ecological Engineering, 118, 31-42. DOI: 10.1016/j.ecoleng.2018.04.009
  • Pradhan A., Marence M., Franca M.J. (2021). The adoption of Seawater Pump Storage Hydropower Systems increases the share of renewable energy production in Small Island Developing States. Renewable Energy, 177, 448-460. DOI: 10.1016/j.renene.2021.05.151
  • Radtke G., Bernaś R., Skóra M.E. (2012). Small hydropower stations – major ecological problems: some examples from rivers of northern Poland. Chrońmy Przyr. Ojcz. 68(6), 424-434 (in Polish).
  • Umer, A., Mithulananthan, N., Rakibuzzaman, S., Federico, M. (2020). A review on rapid responsive energy storage technologies for frequency regulation in modern power systems. Renewable and Sustainable Energy Reviews, 120. DOI: 10.1016/j.rser.2019.109626
  • Waters, S., Aggidis, G. (2015). Over 2000 years in review: Revival of the Archimedes Screw from Pump to Turbine. Renewable and Sustainable Energy Reviews, 51, 497-505. DOI: 10.1016/j.rser.2015.06.028
  • Wiśniewolski, W. (2002). Factors favorable and harmful to the development and maintenance of fish populations in flowing waters. Suppl. Acta Hydrobiol., 3, 1-28 (in Polish).
  • Wiśniewolski, W. (2003). Possibilities of counteracting the effects of partitioning rivers and recreating fish migration routes. Supplementa ad Acta Hydrobiologica, 6, 45-64 (in Polish).
  • Wiśniewolski, W., Augustyn, L., Bartel, R., Depowski, R., Dębowski, P., Klich, M., Witkowski, A. (2004). Migratory fish restitution and the patency of Polish rivers. WWF, Warszawa (in Polish).
  • Witkowski, A., Kotusz, J., Przybylski, M. (2009). The degree of threat to Poland's freshwater ichthyofauna: Red list of lampreys and fish – as of 2009. Chrońmy Przyr. Ojcz. 65(1), 33-52 (in Polish).
  • Xin, Yee, Mah A., Shin, Ho, W., Hassim, M., Hashim, H., Yen, Liew, P., Ab, Muis, Z. (2021). Targeting and scheduling of standalone renewable energy system with liquid organic hydrogen carrier as energy storage. Energy, 218. DOI: 10.1016/j.energy.2020.119475
  • Zawiślak, M. (2017). Method of designing and modernising machines and flow systems using Computational Fluid Mechanics. Publishing House of the Poznań University of Technology.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-8a42eef4-38b1-428d-ba22-dd4f920c6225
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