Optimization of Co-Flow Jet Parameters for Ahmed Body Application

This study evaluates the drag reduction strategy of suction and blowing on idealize automotive vehicle, Ahmed Body. Optimization approach is adapted in order to analyse the effect of slot location, momentum coefficient and slot angle on the vehicle which experiencing drag. Despite all the efforts th...

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Published in:International Journal of Integrated Engineering
Main Author: Derghal I.; Saifuddin M.; Noh M.H.M.; Hamid A.H.A.
Format: Article
Language:English
Published: Penerbit UTHM 2023
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85177446761&doi=10.30880%2fijie.2023.15.03.025&partnerID=40&md5=8c34bf7c19bdb630b0f3f963dfc30b8d
id 2-s2.0-85177446761
spelling 2-s2.0-85177446761
Derghal I.; Saifuddin M.; Noh M.H.M.; Hamid A.H.A.
Optimization of Co-Flow Jet Parameters for Ahmed Body Application
2023
International Journal of Integrated Engineering
15
5
10.30880/ijie.2023.15.03.025
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85177446761&doi=10.30880%2fijie.2023.15.03.025&partnerID=40&md5=8c34bf7c19bdb630b0f3f963dfc30b8d
This study evaluates the drag reduction strategy of suction and blowing on idealize automotive vehicle, Ahmed Body. Optimization approach is adapted in order to analyse the effect of slot location, momentum coefficient and slot angle on the vehicle which experiencing drag. Despite all the efforts that have been done to reduce the Ahmed body drag using various active flow control system, most of the drag reduction were only less than 15%. A 25° Ahmed body with build in co-flow jet is modelled using a CAD software. The flow around the Ahmed body is simulated at Reynolds number based on length Re = 4.29 × 106. The governing equation were solve using an open source software package, which has been validated against experimental data. Pressure Implicit with Splitting of Operator (PISO) algorithm is applied to solve the equation. The outcome of the simulation are varies depending on the variables. Some show a decrease in drag while there are also that actually increase the drag of the system. This are caused by the suction and blowing slots that effect the surrounding air flow whether it is reducing or increasing the wake size downstream of the body. The result shows the momentum coefficient and location of both suction and blowing jet played an important role of manipulating the flow around the body and reducing the drag. The velocity contours indicated that the key to drag reduction is by using 40 m/s jet velocity, placement of suction and blowing away from each other. © 2023 UTHM Publisher. All rights reserved.
Penerbit UTHM
2229838X
English
Article
All Open Access; Bronze Open Access
author Derghal I.; Saifuddin M.; Noh M.H.M.; Hamid A.H.A.
spellingShingle Derghal I.; Saifuddin M.; Noh M.H.M.; Hamid A.H.A.
Optimization of Co-Flow Jet Parameters for Ahmed Body Application
author_facet Derghal I.; Saifuddin M.; Noh M.H.M.; Hamid A.H.A.
author_sort Derghal I.; Saifuddin M.; Noh M.H.M.; Hamid A.H.A.
title Optimization of Co-Flow Jet Parameters for Ahmed Body Application
title_short Optimization of Co-Flow Jet Parameters for Ahmed Body Application
title_full Optimization of Co-Flow Jet Parameters for Ahmed Body Application
title_fullStr Optimization of Co-Flow Jet Parameters for Ahmed Body Application
title_full_unstemmed Optimization of Co-Flow Jet Parameters for Ahmed Body Application
title_sort Optimization of Co-Flow Jet Parameters for Ahmed Body Application
publishDate 2023
container_title International Journal of Integrated Engineering
container_volume 15
container_issue 5
doi_str_mv 10.30880/ijie.2023.15.03.025
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85177446761&doi=10.30880%2fijie.2023.15.03.025&partnerID=40&md5=8c34bf7c19bdb630b0f3f963dfc30b8d
description This study evaluates the drag reduction strategy of suction and blowing on idealize automotive vehicle, Ahmed Body. Optimization approach is adapted in order to analyse the effect of slot location, momentum coefficient and slot angle on the vehicle which experiencing drag. Despite all the efforts that have been done to reduce the Ahmed body drag using various active flow control system, most of the drag reduction were only less than 15%. A 25° Ahmed body with build in co-flow jet is modelled using a CAD software. The flow around the Ahmed body is simulated at Reynolds number based on length Re = 4.29 × 106. The governing equation were solve using an open source software package, which has been validated against experimental data. Pressure Implicit with Splitting of Operator (PISO) algorithm is applied to solve the equation. The outcome of the simulation are varies depending on the variables. Some show a decrease in drag while there are also that actually increase the drag of the system. This are caused by the suction and blowing slots that effect the surrounding air flow whether it is reducing or increasing the wake size downstream of the body. The result shows the momentum coefficient and location of both suction and blowing jet played an important role of manipulating the flow around the body and reducing the drag. The velocity contours indicated that the key to drag reduction is by using 40 m/s jet velocity, placement of suction and blowing away from each other. © 2023 UTHM Publisher. All rights reserved.
publisher Penerbit UTHM
issn 2229838X
language English
format Article
accesstype All Open Access; Bronze Open Access
record_format scopus
collection Scopus
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