Parametric study of multiple configurations of pico hydrokinetic turbines using CFD

This paper aims to study the river flow characteristics over pico hydrokinetic turbines with variation of arrangement using computational fluid dynamics (CFD) software. This study is required to obtain the optimum spacing and angle between the turbines which leads to higher turbine effective utilisa...

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Main Authors: Yogaraja Balakrishnan, At-Tasneem Mohd Amin
Format: Article
Language:English
Published: EDP Sciences 2016-01-01
Series:MATEC Web of Conferences
Online Access:http://dx.doi.org/10.1051/matecconf/20167400024
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spelling doaj-848e33b5e6b2495b91dd9fe519d0a8242021-02-02T03:54:57ZengEDP SciencesMATEC Web of Conferences2261-236X2016-01-01740002410.1051/matecconf/20167400024matecconf_icmer2016_00024Parametric study of multiple configurations of pico hydrokinetic turbines using CFDYogaraja Balakrishnan0At-Tasneem Mohd Amin1Faculty of Mechanical Engineering, Universiti Malaysia PahangFellow Researcher, Centre for Earth Resources Research & Management (CERRM), Universiti Malaysia Pahang, Lebuhraya Tun RazakThis paper aims to study the river flow characteristics over pico hydrokinetic turbines with variation of arrangement using computational fluid dynamics (CFD) software. This study is required to obtain the optimum spacing and angle between the turbines which leads to higher turbine effective utilisation and performance in terms of power generated. In this study, a river model is created in CFD software to simulate the water flow over the turbines as they are placed in a river to obtain the water flow characteristic. Different types of array arrangements are simulated in the river model. Multiple turbines are used to accumulate more power. The turbine model which consists of eight turbines is arranged in series with different spacing, ranging from a size of diameter (1D) to four times diameter (4D) of turbine is simulated to identify the optimum spacing between the turbines. Then, the simulation is continued using a sufficient spacing of 0.5D with angles ranging of 10° to 60° from datum of original position to minimise the disruption of the aquatic environment. The velocity profiles of each turbine are obtained and analysed. The 4D spacing and 40° angle displayed higher average velocities compared to other arrangements. Thus, from this study, the 4D and 40° are deduced as the optimum spacing and angle, respectively.http://dx.doi.org/10.1051/matecconf/20167400024
collection DOAJ
language English
format Article
sources DOAJ
author Yogaraja Balakrishnan
At-Tasneem Mohd Amin
spellingShingle Yogaraja Balakrishnan
At-Tasneem Mohd Amin
Parametric study of multiple configurations of pico hydrokinetic turbines using CFD
MATEC Web of Conferences
author_facet Yogaraja Balakrishnan
At-Tasneem Mohd Amin
author_sort Yogaraja Balakrishnan
title Parametric study of multiple configurations of pico hydrokinetic turbines using CFD
title_short Parametric study of multiple configurations of pico hydrokinetic turbines using CFD
title_full Parametric study of multiple configurations of pico hydrokinetic turbines using CFD
title_fullStr Parametric study of multiple configurations of pico hydrokinetic turbines using CFD
title_full_unstemmed Parametric study of multiple configurations of pico hydrokinetic turbines using CFD
title_sort parametric study of multiple configurations of pico hydrokinetic turbines using cfd
publisher EDP Sciences
series MATEC Web of Conferences
issn 2261-236X
publishDate 2016-01-01
description This paper aims to study the river flow characteristics over pico hydrokinetic turbines with variation of arrangement using computational fluid dynamics (CFD) software. This study is required to obtain the optimum spacing and angle between the turbines which leads to higher turbine effective utilisation and performance in terms of power generated. In this study, a river model is created in CFD software to simulate the water flow over the turbines as they are placed in a river to obtain the water flow characteristic. Different types of array arrangements are simulated in the river model. Multiple turbines are used to accumulate more power. The turbine model which consists of eight turbines is arranged in series with different spacing, ranging from a size of diameter (1D) to four times diameter (4D) of turbine is simulated to identify the optimum spacing between the turbines. Then, the simulation is continued using a sufficient spacing of 0.5D with angles ranging of 10° to 60° from datum of original position to minimise the disruption of the aquatic environment. The velocity profiles of each turbine are obtained and analysed. The 4D spacing and 40° angle displayed higher average velocities compared to other arrangements. Thus, from this study, the 4D and 40° are deduced as the optimum spacing and angle, respectively.
url http://dx.doi.org/10.1051/matecconf/20167400024
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