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Low Head Hydropower for Local Energy Solutions
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Low Head Hydropower for Local Energy Solutions

Book Details

Format Paperback / Softback
ISBN-10 0815396120
ISBN-13 9780815396123
Publisher Taylor & Francis Inc
Imprint CRC Press Inc
Country of Manufacture US
Country of Publication GB
Publication Date Nov 14th, 2017
Print length 244 Pages
Weight 450 grams
Ksh 17,450.00
Werezi Extended Catalogue 0 in stock

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Small hydropower is increasingly important on a global level, and the possibility of local power generation could considerably improve living conditions in rural areas in developing countries. This thesis presents a numerical modelling approach to improve the design of low-cost machines like water wheels for increased hydraulic efficiency. Using a Computational Fluid Dynamics (CFD) approach, it explores effects of blade geometry, optimal wheel-width to channel-width ratio and channel bed conditions upstream and downstream to improve performance. With a power rating in the low kilowatt range, low-head hydropower machines seem to have a clear potential for small-scale energy generation.

The role of small hydropower is becoming increasingly important on a global level. Increasing energy demand and environmental awareness has further triggered research and development into sustainable low-cost technologies. In developing countries, particularly in rural areas, the possibility of local power generation could considerably improve living conditions. With this in mind, the development of a next generation low-head hydropower machines was subject of investigation in the EU-project HYLOW. Being part of the research lines of that project, this thesis presents a numerical modelling approach to improve the design of machines like water wheels for increased hydraulic efficiency. Nowadays, Computational Fluid Dynamics (CFD) enables numerical models to be quite accurate and incorporate physical complexities like free surfaces and rotating machines. The results of the CFD simulations carried out in this research show that a change in blade geometry can result in higher torque levels, thereby increasing performance. Numerical simulations also enabled to determine the optimal wheel-width to channel-width ratio and further improve performance by modifying the channel bed conditions upstream and downstream of the water wheel. With a power rating in the low kilowatt range, low-head hydropower machines like optimised water wheels seem to have a clear potential for small-scale energy generation, thereby contributing to achieving the Sustainable Development Goals by providing local energy solutions.


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