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Investigation of different deflector geometry and mechanism effect on the performance of an in-pipe hydro Savonius turbine

Author

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  • Bizhanpour, Ali
  • Hasanzadeh, Nima
  • Najafi, Amir F.
  • Magagnato, Franco

Abstract

Generation of clean power is one of the primary concerns of the world's engineering community today. The use of renewable and clean energy harvesting methods, especially on a small scale, has gained increasing importance in recent years. Due to abundant distribution, uncomplicated manufacturing, and low cost, small-scale hydrokinetic sources could be an interesting choice for clean energy harvesting. For instance, existing excessive pressure in water transmission systems could be counted as a small-scale hydrokinetic energy source. One beneficial method for extracting this excessive energy from piping systems is utilizing in-pipe drag-based turbines with a vertical axis. Despite recent studies determining the optimal design point for these turbines, variable flow rates within the pipeline are one of the problems that affect their operation, causing deviations from the optimal point. In this study, the main focus is on improving the turbine performance in off-design conditions by use of deflectors, which are generally used to direct the flow toward the blades of a turbine in an appropriate direction. For these reasons, the effects of five different types of deflector geometry on the efficiency of an in-pipe Savonius turbine have been numerically investigated for varying flow rates. Among the studied deflectors, one featuring a moving guide vane, that can dynamically adjust its position at various flow rates has proved to have considerably better performance at flow rates that are different from the optimal design point. In addition, a new systematic outline procedure for designing this type of deflector in a limited space of small-scale pipe has been proposed. The accuracy of the numerical simulations is validated by the experimental results of the provided test rig.

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  • Bizhanpour, Ali & Hasanzadeh, Nima & Najafi, Amir F. & Magagnato, Franco, 2023. "Investigation of different deflector geometry and mechanism effect on the performance of an in-pipe hydro Savonius turbine," Applied Energy, Elsevier, vol. 350(C).
  • Handle: RePEc:eee:appene:v:350:y:2023:i:c:s0306261923010619
    DOI: 10.1016/j.apenergy.2023.121697
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    References listed on IDEAS

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    1. Storti, Bruno A. & Dorella, Jonathan J. & Roman, Nadia D. & Peralta, Ignacio & Albanesi, Alejandro E., 2019. "Improving the efficiency of a Savonius wind turbine by designing a set of deflector plates with a metamodel-based optimization approach," Energy, Elsevier, vol. 186(C).
    2. Payambarpour, S. Abdolkarim & Najafi, Amir F. & Magagnato, Franco, 2020. "Investigation of deflector geometry and turbine aspect ratio effect on 3D modified in-pipe hydro Savonius turbine: Parametric study," Renewable Energy, Elsevier, vol. 148(C), pages 44-59.
    3. Armando Carravetta & Giuseppe Del Giudice & Oreste Fecarotta & Helena M. Ramos, 2013. "PAT Design Strategy for Energy Recovery in Water Distribution Networks by Electrical Regulation," Energies, MDPI, vol. 6(1), pages 1-14, January.
    4. Yang, Sun-Sheng & Derakhshan, Shahram & Kong, Fan-Yu, 2012. "Theoretical, numerical and experimental prediction of pump as turbine performance," Renewable Energy, Elsevier, vol. 48(C), pages 507-513.
    5. Armando Carravetta & Giuseppe Del Giudice & Oreste Fecarotta & Helena Ramos, 2012. "Energy Production in Water Distribution Networks: A PAT Design Strategy," Water Resources Management: An International Journal, Published for the European Water Resources Association (EWRA), Springer;European Water Resources Association (EWRA), vol. 26(13), pages 3947-3959, October.
    6. Du, Jiyun & Shen, Zhicheng & Yang, Hongxing, 2018. "Effects of different block designs on the performance of inline cross-flow turbines in urban water mains," Applied Energy, Elsevier, vol. 228(C), pages 97-107.
    7. Du, Jiyun & Yang, Hongxing & Shen, Zhicheng & Chen, Jian, 2017. "Micro hydro power generation from water supply system in high rise buildings using pump as turbines," Energy, Elsevier, vol. 137(C), pages 431-440.
    8. Jiyun, Du & Hongxing, Yang & Zhicheng, Shen & Xiaodong, Guo, 2018. "Development of an inline vertical cross-flow turbine for hydropower harvesting in urban water supply pipes," Renewable Energy, Elsevier, vol. 127(C), pages 386-397.
    9. Chen, J. & Yang, H.X. & Liu, C.P. & Lau, C.H. & Lo, M., 2013. "A novel vertical axis water turbine for power generation from water pipelines," Energy, Elsevier, vol. 54(C), pages 184-193.
    10. Okot, David Kilama, 2013. "Review of small hydropower technology," Renewable and Sustainable Energy Reviews, Elsevier, vol. 26(C), pages 515-520.
    11. Jain, Sanjay V. & Patel, Rajesh N., 2014. "Investigations on pump running in turbine mode: A review of the state-of-the-art," Renewable and Sustainable Energy Reviews, Elsevier, vol. 30(C), pages 841-868.
    12. Samora, Irene & Hasmatuchi, Vlad & Münch-Alligné, Cécile & Franca, Mário J. & Schleiss, Anton J. & Ramos, Helena M., 2016. "Experimental characterization of a five blade tubular propeller turbine for pipe inline installation," Renewable Energy, Elsevier, vol. 95(C), pages 356-366.
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