Methods for improving the in-cylinder airflow characteristics for sustainable transportation using fuels with higher viscosity: A review

Numerous research studies have been persistently conducted to improve the performance of diesel engines (CI engines) running on alternative fuels. The poor performance of CI engines due to the high viscosity of alternative fuels limits their applications. Several techniques and measures have been in...

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Published in:Renewable and Sustainable Energy Reviews
Main Author: Hamid M.F.; Idroas M.Y.; Mazlan M.; Sa'ad S.; Teoh Y.H.; Che Mat S.; Miskam M.A.; Abdullah M.K.
Format: Review
Language:English
Published: Elsevier Ltd 2022
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85119508388&doi=10.1016%2fj.rser.2021.111882&partnerID=40&md5=09d37bed52fa6c704d7e7ce2ebf59367
id 2-s2.0-85119508388
spelling 2-s2.0-85119508388
Hamid M.F.; Idroas M.Y.; Mazlan M.; Sa'ad S.; Teoh Y.H.; Che Mat S.; Miskam M.A.; Abdullah M.K.
Methods for improving the in-cylinder airflow characteristics for sustainable transportation using fuels with higher viscosity: A review
2022
Renewable and Sustainable Energy Reviews
155

10.1016/j.rser.2021.111882
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85119508388&doi=10.1016%2fj.rser.2021.111882&partnerID=40&md5=09d37bed52fa6c704d7e7ce2ebf59367
Numerous research studies have been persistently conducted to improve the performance of diesel engines (CI engines) running on alternative fuels. The poor performance of CI engines due to the high viscosity of alternative fuels limits their applications. Several techniques and measures have been introduced, such as preheating the fuel before being supplied to the engine, changing the injection methods, altering the combustion chamber design, and modifying the piston to improve engine performance while running on higher viscosity fuel. These techniques effectively enhanced engine performance and reduced emission, but their performance is still lower than those of petro-diesel engines. Improving the in-cylinder airflow characteristics in the combustion chamber could potentially address the problem of poor performance. Nevertheless, studies investigating the appropriate methods to overcome poor performance are limited. The in-cylinder airflow characteristics are vital for improving the air-fuel mixing process. Changes in the airflow characteristics can generate more turbulence inside the combustion chamber. An increase in the turbulent flow in the combustion chamber will enable the break-up of higher viscosity fuel during injection and mix well with the in-cylinder airflow. From the literature, the commonly used methods to enhance and stimulate the turbulent flow in the combustion chamber are by using a guide vane device, throttling the intake manifold, modifying the combustion chamber, and changing the intake manifold design. This paper briefly reviews various techniques for improving the in-cylinder airflow characteristics in CI engines running on fuel with higher viscosity (FHVs). © 2021 Elsevier Ltd
Elsevier Ltd
13640321
English
Review

author Hamid M.F.; Idroas M.Y.; Mazlan M.; Sa'ad S.; Teoh Y.H.; Che Mat S.; Miskam M.A.; Abdullah M.K.
spellingShingle Hamid M.F.; Idroas M.Y.; Mazlan M.; Sa'ad S.; Teoh Y.H.; Che Mat S.; Miskam M.A.; Abdullah M.K.
Methods for improving the in-cylinder airflow characteristics for sustainable transportation using fuels with higher viscosity: A review
author_facet Hamid M.F.; Idroas M.Y.; Mazlan M.; Sa'ad S.; Teoh Y.H.; Che Mat S.; Miskam M.A.; Abdullah M.K.
author_sort Hamid M.F.; Idroas M.Y.; Mazlan M.; Sa'ad S.; Teoh Y.H.; Che Mat S.; Miskam M.A.; Abdullah M.K.
title Methods for improving the in-cylinder airflow characteristics for sustainable transportation using fuels with higher viscosity: A review
title_short Methods for improving the in-cylinder airflow characteristics for sustainable transportation using fuels with higher viscosity: A review
title_full Methods for improving the in-cylinder airflow characteristics for sustainable transportation using fuels with higher viscosity: A review
title_fullStr Methods for improving the in-cylinder airflow characteristics for sustainable transportation using fuels with higher viscosity: A review
title_full_unstemmed Methods for improving the in-cylinder airflow characteristics for sustainable transportation using fuels with higher viscosity: A review
title_sort Methods for improving the in-cylinder airflow characteristics for sustainable transportation using fuels with higher viscosity: A review
publishDate 2022
container_title Renewable and Sustainable Energy Reviews
container_volume 155
container_issue
doi_str_mv 10.1016/j.rser.2021.111882
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85119508388&doi=10.1016%2fj.rser.2021.111882&partnerID=40&md5=09d37bed52fa6c704d7e7ce2ebf59367
description Numerous research studies have been persistently conducted to improve the performance of diesel engines (CI engines) running on alternative fuels. The poor performance of CI engines due to the high viscosity of alternative fuels limits their applications. Several techniques and measures have been introduced, such as preheating the fuel before being supplied to the engine, changing the injection methods, altering the combustion chamber design, and modifying the piston to improve engine performance while running on higher viscosity fuel. These techniques effectively enhanced engine performance and reduced emission, but their performance is still lower than those of petro-diesel engines. Improving the in-cylinder airflow characteristics in the combustion chamber could potentially address the problem of poor performance. Nevertheless, studies investigating the appropriate methods to overcome poor performance are limited. The in-cylinder airflow characteristics are vital for improving the air-fuel mixing process. Changes in the airflow characteristics can generate more turbulence inside the combustion chamber. An increase in the turbulent flow in the combustion chamber will enable the break-up of higher viscosity fuel during injection and mix well with the in-cylinder airflow. From the literature, the commonly used methods to enhance and stimulate the turbulent flow in the combustion chamber are by using a guide vane device, throttling the intake manifold, modifying the combustion chamber, and changing the intake manifold design. This paper briefly reviews various techniques for improving the in-cylinder airflow characteristics in CI engines running on fuel with higher viscosity (FHVs). © 2021 Elsevier Ltd
publisher Elsevier Ltd
issn 13640321
language English
format Review
accesstype
record_format scopus
collection Scopus
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