Development of jacket platform tsunami risk rating system in waters offshore North Borneo
This work details the simulation of tsunami waves generated by seaquakes in the Manila Trench and their effect on fixed oil and gas jacket platforms in waters offshore North Borneo. For this study, a four-leg living quarter jacket platform located in a water depth of 63m is modelled in SACS v5.3. Ma...
Saved in:
Main Authors: | , , , , , |
---|---|
Other Authors: | |
Format: | Article |
Published: |
Harbin Engineering University
2023
|
Tags: |
Add Tag
No Tags, Be the first to tag this record!
|
id |
my.uniten.dspace-22665 |
---|---|
record_format |
dspace |
spelling |
my.uniten.dspace-226652023-05-29T14:11:32Z Development of jacket platform tsunami risk rating system in waters offshore North Borneo Lee H.E. Liew M.S. Mardi N.H. Na K.L. Toloue I. Wong S.K. 57190179926 36161114800 57190171141 55695098900 55841896000 57190166255 This work details the simulation of tsunami waves generated by seaquakes in the Manila Trench and their effect on fixed oil and gas jacket platforms in waters offshore North Borneo. For this study, a four-leg living quarter jacket platform located in a water depth of 63m is modelled in SACS v5.3. Malaysia has traditionally been perceived to be safe from the hazards of earthquakes and tsunamis. Local design practices tend to neglect tsunami waves and include no such provisions. In 2004, a 9.3Mw seaquake occurred off the northwest coast of Aceh, which generated tsunami waves that caused destruction in Malaysia totalling US$ 25 million and 68 deaths. This event prompted an awareness of the need to study the reliability of fixed offshore platforms scattered throughout Malaysian waters. In this paper, we present a review of research on the seismicity of the Manila Trench, which is perceived to be high risk for Southeast Asia. From the tsunami numerical model TUNA-M2, we extract computer-simulated tsunami waves at prescribed grid points in the vicinity of the platforms in the region. Using wave heights as input, we simulate the tsunami using SACS v5.3 structural analysis software of offshore platforms, which is widely accepted by the industry. We employ the nonlinear solitary wave theory in our tsunami loading calculations for the platforms, and formulate a platform-specific risk quantification system. We then perform an intensive structural sensitivity analysis and derive a corresponding platform-specific risk rating model. � 2016, Harbin Engineering University and Springer-Verlag Berlin Heidelberg. Final 2023-05-29T06:11:32Z 2023-05-29T06:11:32Z 2016 Article 10.1007/s11804-016-1367-5 2-s2.0-84978069609 https://www.scopus.com/inward/record.uri?eid=2-s2.0-84978069609&doi=10.1007%2fs11804-016-1367-5&partnerID=40&md5=d7e50331627f37b066d37f77b65bddf4 https://irepository.uniten.edu.my/handle/123456789/22665 15 3 307 320 Harbin Engineering University Scopus |
institution |
Universiti Tenaga Nasional |
building |
UNITEN Library |
collection |
Institutional Repository |
continent |
Asia |
country |
Malaysia |
content_provider |
Universiti Tenaga Nasional |
content_source |
UNITEN Institutional Repository |
url_provider |
http://dspace.uniten.edu.my/ |
description |
This work details the simulation of tsunami waves generated by seaquakes in the Manila Trench and their effect on fixed oil and gas jacket platforms in waters offshore North Borneo. For this study, a four-leg living quarter jacket platform located in a water depth of 63m is modelled in SACS v5.3. Malaysia has traditionally been perceived to be safe from the hazards of earthquakes and tsunamis. Local design practices tend to neglect tsunami waves and include no such provisions. In 2004, a 9.3Mw seaquake occurred off the northwest coast of Aceh, which generated tsunami waves that caused destruction in Malaysia totalling US$ 25 million and 68 deaths. This event prompted an awareness of the need to study the reliability of fixed offshore platforms scattered throughout Malaysian waters. In this paper, we present a review of research on the seismicity of the Manila Trench, which is perceived to be high risk for Southeast Asia. From the tsunami numerical model TUNA-M2, we extract computer-simulated tsunami waves at prescribed grid points in the vicinity of the platforms in the region. Using wave heights as input, we simulate the tsunami using SACS v5.3 structural analysis software of offshore platforms, which is widely accepted by the industry. We employ the nonlinear solitary wave theory in our tsunami loading calculations for the platforms, and formulate a platform-specific risk quantification system. We then perform an intensive structural sensitivity analysis and derive a corresponding platform-specific risk rating model. � 2016, Harbin Engineering University and Springer-Verlag Berlin Heidelberg. |
author2 |
57190179926 |
author_facet |
57190179926 Lee H.E. Liew M.S. Mardi N.H. Na K.L. Toloue I. Wong S.K. |
format |
Article |
author |
Lee H.E. Liew M.S. Mardi N.H. Na K.L. Toloue I. Wong S.K. |
spellingShingle |
Lee H.E. Liew M.S. Mardi N.H. Na K.L. Toloue I. Wong S.K. Development of jacket platform tsunami risk rating system in waters offshore North Borneo |
author_sort |
Lee H.E. |
title |
Development of jacket platform tsunami risk rating system in waters offshore North Borneo |
title_short |
Development of jacket platform tsunami risk rating system in waters offshore North Borneo |
title_full |
Development of jacket platform tsunami risk rating system in waters offshore North Borneo |
title_fullStr |
Development of jacket platform tsunami risk rating system in waters offshore North Borneo |
title_full_unstemmed |
Development of jacket platform tsunami risk rating system in waters offshore North Borneo |
title_sort |
development of jacket platform tsunami risk rating system in waters offshore north borneo |
publisher |
Harbin Engineering University |
publishDate |
2023 |
_version_ |
1806427958044262400 |
score |
13.211869 |