Mathematical Modelling of Vehicle Rear End Design Using The Polynomial Response Surface Method (PRSM)

It is important to consider the aerodynamic efficiency of the car in design as it improves fuel consumption and provides a smoother ride for the occupant. Studies have shown that vehicle front end profile affects the aerodynamic efficiency of a car but however, to date rear- end vehicle parametric s...

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发表在:INTERNATIONAL JOURNAL OF INTEGRATED ENGINEERING
Main Authors: Venkatason, Kausalyah; Cornell, Walferd; Sivaguru, Shasthri
格式: 文件
语言:English
出版: UNIV TUN HUSSEIN ONN MALAYSIA 2024
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在线阅读:https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001451176300015
author Venkatason
Kausalyah; Cornell
Walferd; Sivaguru
Shasthri
spellingShingle Venkatason
Kausalyah; Cornell
Walferd; Sivaguru
Shasthri
Mathematical Modelling of Vehicle Rear End Design Using The Polynomial Response Surface Method (PRSM)
Engineering
author_facet Venkatason
Kausalyah; Cornell
Walferd; Sivaguru
Shasthri
author_sort Venkatason
spelling Venkatason, Kausalyah; Cornell, Walferd; Sivaguru, Shasthri
Mathematical Modelling of Vehicle Rear End Design Using The Polynomial Response Surface Method (PRSM)
INTERNATIONAL JOURNAL OF INTEGRATED ENGINEERING
English
Article
It is important to consider the aerodynamic efficiency of the car in design as it improves fuel consumption and provides a smoother ride for the occupant. Studies have shown that vehicle front end profile affects the aerodynamic efficiency of a car but however, to date rear- end vehicle parametric studies have not been done to ascertain the influence of these parameters on the vehicle's aerodynamic efficiency. This research presents the aerodynamic study of the sedan vehicle rear end by identification of the key vehicle rear-end parameters that influence the drag coefficient value of the vehicle model through the Polynomial Response Surface Modelling (PPRSM.). A total of 100 sedan vehicle models with 7 key rear end parameters generated through the Central Composite Design (CCD) sampling technique are designed using the CAD software, CATIA V5 R20. The front end of the vehicle profile is kept constant. Computational Fluid Dynamic Analysis (CFD) is then performed on these models to obtain the drag coefficient (Cd). Mathematical modelling is performed on the Cd data obtained using the PRSM method. The results from the PRSM model gave a value of R<^>2 is 0.926 with a relatively small error of RMSE at 0.006986 indicating a very good model fit. The rear end vehicle parameter that notably influenced the drag coefficient is the wind shield angle (X6) with the value from 21 degrees to 41 degrees. In conclusion, the rear end vehicle parameters do not seem to largely contribute to the aerodynamic stability of the model.
UNIV TUN HUSSEIN ONN MALAYSIA
2229-838X

2024
16
8
10.30880/ijie.2024.16.08.027
Engineering

WOS:001451176300015
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001451176300015
title Mathematical Modelling of Vehicle Rear End Design Using The Polynomial Response Surface Method (PRSM)
title_short Mathematical Modelling of Vehicle Rear End Design Using The Polynomial Response Surface Method (PRSM)
title_full Mathematical Modelling of Vehicle Rear End Design Using The Polynomial Response Surface Method (PRSM)
title_fullStr Mathematical Modelling of Vehicle Rear End Design Using The Polynomial Response Surface Method (PRSM)
title_full_unstemmed Mathematical Modelling of Vehicle Rear End Design Using The Polynomial Response Surface Method (PRSM)
title_sort Mathematical Modelling of Vehicle Rear End Design Using The Polynomial Response Surface Method (PRSM)
container_title INTERNATIONAL JOURNAL OF INTEGRATED ENGINEERING
language English
format Article
description It is important to consider the aerodynamic efficiency of the car in design as it improves fuel consumption and provides a smoother ride for the occupant. Studies have shown that vehicle front end profile affects the aerodynamic efficiency of a car but however, to date rear- end vehicle parametric studies have not been done to ascertain the influence of these parameters on the vehicle's aerodynamic efficiency. This research presents the aerodynamic study of the sedan vehicle rear end by identification of the key vehicle rear-end parameters that influence the drag coefficient value of the vehicle model through the Polynomial Response Surface Modelling (PPRSM.). A total of 100 sedan vehicle models with 7 key rear end parameters generated through the Central Composite Design (CCD) sampling technique are designed using the CAD software, CATIA V5 R20. The front end of the vehicle profile is kept constant. Computational Fluid Dynamic Analysis (CFD) is then performed on these models to obtain the drag coefficient (Cd). Mathematical modelling is performed on the Cd data obtained using the PRSM method. The results from the PRSM model gave a value of R<^>2 is 0.926 with a relatively small error of RMSE at 0.006986 indicating a very good model fit. The rear end vehicle parameter that notably influenced the drag coefficient is the wind shield angle (X6) with the value from 21 degrees to 41 degrees. In conclusion, the rear end vehicle parameters do not seem to largely contribute to the aerodynamic stability of the model.
publisher UNIV TUN HUSSEIN ONN MALAYSIA
issn 2229-838X

publishDate 2024
container_volume 16
container_issue 8
doi_str_mv 10.30880/ijie.2024.16.08.027
topic Engineering
topic_facet Engineering
accesstype
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url https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001451176300015
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