Design, Analysis and Fabrication of Hydroelectric Turbine for Open Canal’s of the River

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Authors

  • Assistant Professor, Department of Mechanical Engineering, M S Ramaiah Institute of Technology, Bengaluru, Karnataka ,IN
  • Lecturer, Department of Civil Engineering, Government Polytechnic, Harihara, Karnataka ,IN
  • UG Students, Department of Mechanical Engineering, M S Ramaiah Institute of Technology, Bengaluru, Karnataka ,IN
  • UG Students, Department of Mechanical Engineering, M S Ramaiah Institute of Technology, Bengaluru, Karnataka ,IN
  • UG Students, Department of Mechanical Engineering, M S Ramaiah Institute of Technology, Bengaluru, Karnataka ,IN
  • UG Students, Department of Mechanical Engineering, M S Ramaiah Institute of Technology, Bengaluru, Karnataka ,IN
  • Associate Professor, Department of Mechanical Engineering, Bangalore Institute of Technology, Bengaluru, Karnataka ,IN

DOI:

https://doi.org/10.18311/jmmf/2023/33365

Keywords:

Water turbine, Water resources, CFD analysis, Energy crisis, Nonrenewable resources

Abstract

Hydroelectricity power source as one of the reliable and renewable energy. In India around 12% of electricity production contributed by hydropower. Due to rapid increase in urbanization, global warming and oil crisis increases. For this need advanced renewable energy extraction technique to meet the global demand. Nowadays at transportation sector electrical vehicles enter to market more and more. To meet the power demand open canals water turbine provides a major contribution locally. Open canals water turbine not require high civil structural work, it can be installed with small modification of existing infrastructure. This turbine installed in open canals and safer from any flood or storm damage condition. Thus, research aims at designing a hydrokinetic turbine applicable to zero head and low velocity flow water bodies such as canals. Open canals water turbine CFD simulation has been performed to predict the flow pattern of water. Additionally power was generated from the optimized design model in lab conditions (Ogee weir channel) wherein the flow velocity was less ranging from 0.02-0.05m/s and the turbine rotated within a range of 14-16 rpm. With further consideration in design and implementation gear box higher power can be achieved when implemented on a large canal’s or channels.

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Published

2023-04-12

How to Cite

Naveen Kumar B. K., Sushma M. S., Jagadeesh, N., Phaniraj, K., Halli Anand, Pranav P. S., & Praveen Kumar M. R. (2023). Design, Analysis and Fabrication of Hydroelectric Turbine for Open Canal’s of the River. Journal of Mines, Metals and Fuels, 71(1), 99–105. https://doi.org/10.18311/jmmf/2023/33365

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