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research article

Computational parametric analysis of the design of cross-flow turbines under constraints

Leguizamon, Sebastian  
•
Avellan, Francois  
October 1, 2020
Renewable Energy

The cross-flow turbine is an attractive technology for small-scale hydropower generation thanks to its low capital cost and relatively high efficiency even under partial discharge operating conditions. It has been proposed that this kind of turbine can be manufactured from standard steel pipe sections given its simple geometry, an alternative that would further decrease the turbine's capital cost compared to highly engineered cross-flow designs. This article explores the trade-offs encountered during the design of cross-flow turbines under the constrains imposed by the discrete set of dimensions available for commercial steel pipes. First, the computational model is presented, analyzed in terms of its convergence behavior, and validated with experimental data. Then, a parametric analysis is performed to understand the relative importance of the design variables and their optimum value in regard to the turbine efficiency. Based on the design guidelines derived from the parametric analysis, an example cross-flow turbine design is presented and thoroughly characterized, demonstrating that it is possible to engineer a cross-flow turbine of competitive efficiency out of commercial steel pipes. These guidelines may encourage the use of cross-flow turbines as an appropriate technology for off-grid regions. (c) 2020 Published by Elsevier Ltd.

  • Details
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Type
research article
DOI
10.1016/j.renene.2020.03.187
Web of Science ID

WOS:000565568100009

Author(s)
Leguizamon, Sebastian  
Avellan, Francois  
Date Issued

2020-10-01

Publisher

PERGAMON-ELSEVIER SCIENCE LTD

Published in
Renewable Energy
Volume

159

Start page

300

End page

311

Subjects

Green & Sustainable Science & Technology

•

Energy & Fuels

•

Science & Technology - Other Topics

•

cross-flow turbine

•

banki-michell turbine

•

constrained design

•

computational fluid dynamics

•

finite volume particle method

•

volume particle method

•

performance

•

methodology

•

simulation

•

speed

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LMH  
Available on Infoscience
September 17, 2020
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/171710
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