PREDICTION OF FATIGUE IN RAIL PAD USING SIMULATION

The primary purpose of rail pads is to prevent cracking in concrete connections, which is assumed to be caused by the passing train's impact and vibration generated by movement from its wheels. To ensure the usage of rail pads is reliable and safe, failure and fatigue life prediction need to be...

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Published in:JURNAL TEKNOLOGI-SCIENCES & ENGINEERING
Main Authors: Amran, Muhammad Faiz Anuar; Wahab, Abdul Malek Abdul; Manan, Nor Fazli Adull; Manurung, Yupiter Hp
Format: Article
Language:English
Published: PENERBIT UTM PRESS 2024
Subjects:
Online Access:https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001159078800004
author Amran
Muhammad Faiz Anuar; Wahab
Abdul Malek Abdul; Manan
Nor Fazli Adull; Manurung
Yupiter Hp
spellingShingle Amran
Muhammad Faiz Anuar; Wahab
Abdul Malek Abdul; Manan
Nor Fazli Adull; Manurung
Yupiter Hp
PREDICTION OF FATIGUE IN RAIL PAD USING SIMULATION
Engineering
author_facet Amran
Muhammad Faiz Anuar; Wahab
Abdul Malek Abdul; Manan
Nor Fazli Adull; Manurung
Yupiter Hp
author_sort Amran
spelling Amran, Muhammad Faiz Anuar; Wahab, Abdul Malek Abdul; Manan, Nor Fazli Adull; Manurung, Yupiter Hp
PREDICTION OF FATIGUE IN RAIL PAD USING SIMULATION
JURNAL TEKNOLOGI-SCIENCES & ENGINEERING
English
Article
The primary purpose of rail pads is to prevent cracking in concrete connections, which is assumed to be caused by the passing train's impact and vibration generated by movement from its wheels. To ensure the usage of rail pads is reliable and safe, failure and fatigue life prediction need to be done. However, analyzing fatigue conditions using the experimental method is time-consuming and costly. Thus, this work aims to develop a finite element model for analyzing the fatigue and life cycle of the rail pads. By using the simulation method, the time and cost of analyzing the process can be reduced. The rail fastening system model comprises a steel rail, rail pad, and concrete sleeper. The Mooney-Rivlin model was used to develop the rail pad, and the isotropic elasticity model was used for the steel rail and concrete sleeper. Using the modified Goodman theory, this study was able to estimate the fatigue life of the rail pad in terms of the number of cycles for a range of compressive forces and toe load. The findings show that a toe load at 18 kN shows more life cycle compared to a higher toe load of 35 kN with more than 50% difference. The life cycle also reduces as the load applies increases. This concludes that the fatigue life of the rail pad is greatly dependent on the toe load condition and compressive load. The rail pad is less durable under greater compressive load circumstances.
PENERBIT UTM PRESS
0127-9696
2180-3722
2024
86
1
10.11113/jurnalteknologi.v86.20559
Engineering
gold
WOS:001159078800004
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001159078800004
title PREDICTION OF FATIGUE IN RAIL PAD USING SIMULATION
title_short PREDICTION OF FATIGUE IN RAIL PAD USING SIMULATION
title_full PREDICTION OF FATIGUE IN RAIL PAD USING SIMULATION
title_fullStr PREDICTION OF FATIGUE IN RAIL PAD USING SIMULATION
title_full_unstemmed PREDICTION OF FATIGUE IN RAIL PAD USING SIMULATION
title_sort PREDICTION OF FATIGUE IN RAIL PAD USING SIMULATION
container_title JURNAL TEKNOLOGI-SCIENCES & ENGINEERING
language English
format Article
description The primary purpose of rail pads is to prevent cracking in concrete connections, which is assumed to be caused by the passing train's impact and vibration generated by movement from its wheels. To ensure the usage of rail pads is reliable and safe, failure and fatigue life prediction need to be done. However, analyzing fatigue conditions using the experimental method is time-consuming and costly. Thus, this work aims to develop a finite element model for analyzing the fatigue and life cycle of the rail pads. By using the simulation method, the time and cost of analyzing the process can be reduced. The rail fastening system model comprises a steel rail, rail pad, and concrete sleeper. The Mooney-Rivlin model was used to develop the rail pad, and the isotropic elasticity model was used for the steel rail and concrete sleeper. Using the modified Goodman theory, this study was able to estimate the fatigue life of the rail pad in terms of the number of cycles for a range of compressive forces and toe load. The findings show that a toe load at 18 kN shows more life cycle compared to a higher toe load of 35 kN with more than 50% difference. The life cycle also reduces as the load applies increases. This concludes that the fatigue life of the rail pad is greatly dependent on the toe load condition and compressive load. The rail pad is less durable under greater compressive load circumstances.
publisher PENERBIT UTM PRESS
issn 0127-9696
2180-3722
publishDate 2024
container_volume 86
container_issue 1
doi_str_mv 10.11113/jurnalteknologi.v86.20559
topic Engineering
topic_facet Engineering
accesstype gold
id WOS:001159078800004
url https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001159078800004
record_format wos
collection Web of Science (WoS)
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