Nonlinear dynamic behaviors of outer shell and upper deck structures subjected to impact loading in maritime environment

Ship collision appears as the most threatening loading accounting for structural casualties and numbers of casualties after impact on the target ship. In order to avoid such losses against collision, better safety during activities in maritime environment is demanded. Therefore, assessment of ship s...

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Main Authors: Prabowo Aditya Rio, Sohn Jung Min
Format: Article
Language:English
Published: De Gruyter 2019-01-01
Series:Curved and Layered Structures
Subjects:
Online Access:https://doi.org/10.1515/cls-2019-0012
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spelling doaj-db5c6e64192f49f284bad6363392659f2021-09-06T19:19:40ZengDe GruyterCurved and Layered Structures2353-73962019-01-016114616010.1515/cls-2019-0012cls-2019-0012Nonlinear dynamic behaviors of outer shell and upper deck structures subjected to impact loading in maritime environmentPrabowo Aditya Rio0Sohn Jung Min1Department of Mechanical Engineering, Sebelas Maret University, Surakarta57126, IndonesiaDepartment of Naval Architecture and Marine Systems Engineering, Pukyong National University, Busan 48513, South KoreaShip collision appears as the most threatening loading accounting for structural casualties and numbers of casualties after impact on the target ship. In order to avoid such losses against collision, better safety during activities in maritime environment is demanded. Therefore, assessment of ship structure is needed to understand dynamic effect of the impact and quantify nonlinear behavior of local members. This study is conducted to achieve those aims by deploying nonlinear finite element analysis (NLFEA) to idealized ship collision event. Validation of the numerical method is performed by comparing results of a modeled collision case with various empirical calculations. Design for impact loading in main analysis considers side collision to main hull structure, which single side skin (SSS) and double side skin (DSS) types are modeled. Investigation is also directed to influence of the target members on the main hull to capacity of absorbed energy and characteristic of structural resistance. Analysis results indicate that good understanding is successfully obtained in terms of structural damage-energy relation. Confirmation of the current calculation using numerical calculation is also confirmed considering the modeled cases and empirical results agree well. Tendency of hull responses concluded that the longitudinal members contribute more to structural resistance against side collision.https://doi.org/10.1515/cls-2019-0012ship-ship collisionlocal member effectsabsorbed energycrushing forcenlfea techniques
collection DOAJ
language English
format Article
sources DOAJ
author Prabowo Aditya Rio
Sohn Jung Min
spellingShingle Prabowo Aditya Rio
Sohn Jung Min
Nonlinear dynamic behaviors of outer shell and upper deck structures subjected to impact loading in maritime environment
Curved and Layered Structures
ship-ship collision
local member effects
absorbed energy
crushing force
nlfea techniques
author_facet Prabowo Aditya Rio
Sohn Jung Min
author_sort Prabowo Aditya Rio
title Nonlinear dynamic behaviors of outer shell and upper deck structures subjected to impact loading in maritime environment
title_short Nonlinear dynamic behaviors of outer shell and upper deck structures subjected to impact loading in maritime environment
title_full Nonlinear dynamic behaviors of outer shell and upper deck structures subjected to impact loading in maritime environment
title_fullStr Nonlinear dynamic behaviors of outer shell and upper deck structures subjected to impact loading in maritime environment
title_full_unstemmed Nonlinear dynamic behaviors of outer shell and upper deck structures subjected to impact loading in maritime environment
title_sort nonlinear dynamic behaviors of outer shell and upper deck structures subjected to impact loading in maritime environment
publisher De Gruyter
series Curved and Layered Structures
issn 2353-7396
publishDate 2019-01-01
description Ship collision appears as the most threatening loading accounting for structural casualties and numbers of casualties after impact on the target ship. In order to avoid such losses against collision, better safety during activities in maritime environment is demanded. Therefore, assessment of ship structure is needed to understand dynamic effect of the impact and quantify nonlinear behavior of local members. This study is conducted to achieve those aims by deploying nonlinear finite element analysis (NLFEA) to idealized ship collision event. Validation of the numerical method is performed by comparing results of a modeled collision case with various empirical calculations. Design for impact loading in main analysis considers side collision to main hull structure, which single side skin (SSS) and double side skin (DSS) types are modeled. Investigation is also directed to influence of the target members on the main hull to capacity of absorbed energy and characteristic of structural resistance. Analysis results indicate that good understanding is successfully obtained in terms of structural damage-energy relation. Confirmation of the current calculation using numerical calculation is also confirmed considering the modeled cases and empirical results agree well. Tendency of hull responses concluded that the longitudinal members contribute more to structural resistance against side collision.
topic ship-ship collision
local member effects
absorbed energy
crushing force
nlfea techniques
url https://doi.org/10.1515/cls-2019-0012
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AT sohnjungmin nonlineardynamicbehaviorsofoutershellandupperdeckstructuressubjectedtoimpactloadinginmaritimeenvironment
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