Transient in-cylinder gas flow characteristics of single cylinder port injection hydrogen fueled engine

Problem statement: The variation of the in-cylinder gas flow characteristics for single cylinder port injection hydrogen fueled internal combustion engine was investigated through transient state simulation. Approach: One dimensional gas dynamics was described the flow and heat transfer in the compo...

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Main Authors: Rahman, Md. Mustafizur, Hamada, Khalaf I., Mat Noor, Muhamad, Abu Bakar, Rosli, Kadirgama, Kumaran, Maleque, Md. Abdul
Format: Article
Language:English
Published: Science Publications 2010
Subjects:
Online Access:http://irep.iium.edu.my/166/
http://irep.iium.edu.my/166/
http://irep.iium.edu.my/166/1/P32_2010.pdf
id iium-166
recordtype eprints
spelling iium-1662017-11-21T08:04:03Z http://irep.iium.edu.my/166/ Transient in-cylinder gas flow characteristics of single cylinder port injection hydrogen fueled engine Rahman, Md. Mustafizur Hamada, Khalaf I. Mat Noor, Muhamad Abu Bakar, Rosli Kadirgama, Kumaran Maleque, Md. Abdul T Technology (General) TA Engineering (General). Civil engineering (General) Problem statement: The variation of the in-cylinder gas flow characteristics for single cylinder port injection hydrogen fueled internal combustion engine was investigated through transient state simulation. Approach: One dimensional gas dynamics was described the flow and heat transfer in the components of the engine model. Special attention is paid to selection and correction of heat transfer correlation which describe of in-cylinder heat transfer to coincide with the practical observations. The engine model was simulated with variable engine speed and Air Fuel Ratio (AFR). Engine speed varied from 2000-5000 rpm with increment equal to 1000 rpm, while AFR changed from stoichiometric to lean limit. Results: The acquired results showed that the maximum in-cylinder temperature and pressure obtained of 2753 K and 49.62 bar at 24°CA ATDC and 13°CA ATDC for AFR = 34.33 respectively, while the minimum in-cylinder temperature and pressure obtained of 1366 K and 29.14 bar at 18 deg CA of ATDC and 8 deg CA of ATDC for AFR = 171.65 respectively. The obtained results show that AFR has a crucial effect on characteristics variation during the power cycle whilst engine speed has minor effects. Conclusion: These results utilized for study the combustion process, fuel consumption, emission production and engine performance. Science Publications 2010 Article PeerReviewed application/pdf en http://irep.iium.edu.my/166/1/P32_2010.pdf Rahman, Md. Mustafizur and Hamada, Khalaf I. and Mat Noor, Muhamad and Abu Bakar, Rosli and Kadirgama, Kumaran and Maleque, Md. Abdul (2010) Transient in-cylinder gas flow characteristics of single cylinder port injection hydrogen fueled engine. American Journal of Applied Sciences , 7 (10). pp. 1364-1371. ISSN 1546-9239 E-ISSN 1554-3641 http://thescipub.com/issue-ajas/7/10
repository_type Digital Repository
institution_category Local University
institution International Islamic University Malaysia
building IIUM Repository
collection Online Access
language English
topic T Technology (General)
TA Engineering (General). Civil engineering (General)
spellingShingle T Technology (General)
TA Engineering (General). Civil engineering (General)
Rahman, Md. Mustafizur
Hamada, Khalaf I.
Mat Noor, Muhamad
Abu Bakar, Rosli
Kadirgama, Kumaran
Maleque, Md. Abdul
Transient in-cylinder gas flow characteristics of single cylinder port injection hydrogen fueled engine
description Problem statement: The variation of the in-cylinder gas flow characteristics for single cylinder port injection hydrogen fueled internal combustion engine was investigated through transient state simulation. Approach: One dimensional gas dynamics was described the flow and heat transfer in the components of the engine model. Special attention is paid to selection and correction of heat transfer correlation which describe of in-cylinder heat transfer to coincide with the practical observations. The engine model was simulated with variable engine speed and Air Fuel Ratio (AFR). Engine speed varied from 2000-5000 rpm with increment equal to 1000 rpm, while AFR changed from stoichiometric to lean limit. Results: The acquired results showed that the maximum in-cylinder temperature and pressure obtained of 2753 K and 49.62 bar at 24°CA ATDC and 13°CA ATDC for AFR = 34.33 respectively, while the minimum in-cylinder temperature and pressure obtained of 1366 K and 29.14 bar at 18 deg CA of ATDC and 8 deg CA of ATDC for AFR = 171.65 respectively. The obtained results show that AFR has a crucial effect on characteristics variation during the power cycle whilst engine speed has minor effects. Conclusion: These results utilized for study the combustion process, fuel consumption, emission production and engine performance.
format Article
author Rahman, Md. Mustafizur
Hamada, Khalaf I.
Mat Noor, Muhamad
Abu Bakar, Rosli
Kadirgama, Kumaran
Maleque, Md. Abdul
author_facet Rahman, Md. Mustafizur
Hamada, Khalaf I.
Mat Noor, Muhamad
Abu Bakar, Rosli
Kadirgama, Kumaran
Maleque, Md. Abdul
author_sort Rahman, Md. Mustafizur
title Transient in-cylinder gas flow characteristics of single cylinder port injection hydrogen fueled engine
title_short Transient in-cylinder gas flow characteristics of single cylinder port injection hydrogen fueled engine
title_full Transient in-cylinder gas flow characteristics of single cylinder port injection hydrogen fueled engine
title_fullStr Transient in-cylinder gas flow characteristics of single cylinder port injection hydrogen fueled engine
title_full_unstemmed Transient in-cylinder gas flow characteristics of single cylinder port injection hydrogen fueled engine
title_sort transient in-cylinder gas flow characteristics of single cylinder port injection hydrogen fueled engine
publisher Science Publications
publishDate 2010
url http://irep.iium.edu.my/166/
http://irep.iium.edu.my/166/
http://irep.iium.edu.my/166/1/P32_2010.pdf
first_indexed 2023-09-18T20:07:07Z
last_indexed 2023-09-18T20:07:07Z
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