Citation: Al-quraishi, M.B.Z.Y.; Sarip,
S.; Mad Kaidi, H.; Ardila-Rey, J.A.;
Muhammad-Sukki, F. A CFD
Analysis for Novel Close-Ended
Deflector for Vertical Water Turbines.
Sustainability 2022, 14, 2790. https://
doi.org/10.3390/su14052790
Academic Editors: Marc Alier and
Mohan Lal Kolhe
Received: 6 January 2022
Accepted: 24 February 2022
Published: 27 February 2022
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sustainability
Article
A CFD Analysis for Novel Close-Ended Deflector for Vertical
Water Turbines
Mohammed Baqer Zaki Yahya Al-quraishi
1
, Shamsul Sarip
1,
* , Hazilah Mad Kaidi
1
,
Jorge Alfredo Ardila-Rey
2
and Firdaus Muhammad-Sukki
3
1
Razak Faculty of Technology and Informatics, Universiti Teknologi Malaysia, Jalan Sultan Yahya Petra,
Kuala Lumpur 54100, Malaysia; zaki.m@graduate.utm.my (M.B.Z.Y.A.-q.); hazilah.kl@utm.my (H.M.K.)
2
Department of Electrical Engineering, Universidad Técnica Federico Santa María,
Santiago de Chile 8940000, Chile; jorge.ardila@usm.cl
3
School of Engineering & the Built Environment, Edinburgh Napier University, Merchiston Campus,
10 Colinton Road, Edinburgh EH10 5DT, UK; f.muhammadsukki@napier.ac.uk
* Correspondence: shamsuls.kl@utm.my
Abstract: The effects of climate change are growing more and more evident, and this is caused by
the increase in CO
2
emissions. Fossil fuel exhaustion and the need for electricity in remote areas
have encouraged researchers to advance and develop the renewable energy sector. One type of clean
energy technology is vertical water turbines that have low efficiency. This paper aims to design
and simulate a novel close-ended, guided deflector to improve the efficiency of vertical turbines.
This research used the dynamic mesh technique to evaluate the concept after the deflector was
designed, and a grid independence study, a boundary sensitivity study, and a timestep sensitivity
study were implemented to ensure the accuracy of the results. Then, we used the sliding mesh model
to determine the performance of four rotors. The results from the dynamic mesh model showed
that the straight rotor with the proposed deflector was not suitable for operating in the deflector,
and the concept is static and does not rotate. However, the others showed a valid concept in the
proposed deflector. For the sliding mesh technique, the results indicated a common trend: all the
rotors’ performances increased when tip speed ratio (TSR) increased, and the highest amount of the
power coefficient (Cp) was found at higher TSRs, such as 1.3 and 1.4, with around 0.45 in the cross
flow type. A three-dimensional simulation was conducted of the cross flow type with the proposed
deflector, and a similar trend was found. Nevertheless, around a 5% difference was found between
the 3D and 2D results for cross flow. The deflector can significantly improve the performance after
0.7 TSR to reach over 0.42 Cp at 1.3 TSR, whereas, without the deflector, the performance reduces to
approximately 0.1 Cp at the same TSR.
Keywords: computational fluid dynamics (CFD); tip speed ratio; small-scale turbine; vertical turbines;
close-ended deflector
1. Introduction
Social and economic growth is strongly related to improvements in the energy sec-
tor [1]. There are many methods for generating electricity. The primary way to produce
electricity is by burning fossil fuels because their cost is relatively reasonable, and they
can be exploited easily. Nevertheless, over the last decade, the rapid increase of fossil fuel
usage has caused a global fossil fuel crisis and many environmental issues [2,3]. Using
environmentally friendly energy sources is an effective technique for mitigating fossil fuel
exploitation and carbon emissions [4,5]. Small-scale hydropower turbines can help to
provide electricity to rural areas in developing countries since 10% of the global population
lived without electricity according to 2019 data [6]. In addition, many areas in Malaysia,
especially East Malaysia, suffer from a lack of electricity due to their distant location from
cities [7]. These rural areas depend on fossil fuel generators. Pulau Perhentian, for example,
Sustainability 2022, 14, 2790. https://doi.org/10.3390/su14052790 https://www.mdpi.com/journal/sustainability