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Structural performance assessment of a woven-fabric reinforced composite as applied in construction of inflatable offshore fender barrier structures

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Structural performance assessment of a woven-fabric reinforced composite as applied in construction of inflatable offshore fender barrier structures. / Aboshio, Aaron; Green, Sarah; Ye, Jianqiao.
In: International Journal of Structural Stability and Dynamics, Vol. 15, No. 1, 1450036, 2015.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

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Aboshio A, Green S, Ye J. Structural performance assessment of a woven-fabric reinforced composite as applied in construction of inflatable offshore fender barrier structures. International Journal of Structural Stability and Dynamics. 2015;15(1):1450036. Epub 2014 Jul 18. doi: 10.1142/S0219455414500369

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@article{aaa4384ca1bb494e9178f97d560b4088,
title = "Structural performance assessment of a woven-fabric reinforced composite as applied in construction of inflatable offshore fender barrier structures",
abstract = "This paper investigates the dynamic structural behavior of woven-fabric reinforced composites with high matrix–fabric volume fraction as applied in the construction of crash or security barriers typified by the Inflatable Offshore Fender Barrier Structure (IOFBS). Dynamic analysis of the IOFBS comprising of over 98% of the composite under impact loading was carried out using the finite element method employing the Coupled Eulerian–Lagrangian (CEL) formulation. The barriers were inflated to 6 kPa and 7 kPa initial pneumatic fluid pressures and subjected to crash loadings from a high velocity vessel. The enclosed fluid of the structure was modeled based on the Shomate equation and fluid behavior of water on which the structure floats was modeled using Us-Up Hugoniot equation of state. The barriers' membrane stresses distributions, deformations, internal fluid pressure surge and volume variations of the structures after impact as well as vessel's degree of instability and deceleration after impact for different initial inflation pressures were computed and studied. The developed models and numerical results obtained are useful in assessing the performance of the composite as used in the IOFBS and similar structures and in improving the design of the structure.",
keywords = "Pneumatic structures, coupled Eulerian–Lagrangian , finite element method , impact loading , offshore barrier structures ",
author = "Aaron Aboshio and Sarah Green and Jianqiao Ye",
year = "2015",
doi = "10.1142/S0219455414500369",
language = "English",
volume = "15",
journal = "International Journal of Structural Stability and Dynamics",
issn = "0219-4554",
publisher = "World Scientific Publishing Co. Pte Ltd",
number = "1",

}

RIS

TY - JOUR

T1 - Structural performance assessment of a woven-fabric reinforced composite as applied in construction of inflatable offshore fender barrier structures

AU - Aboshio, Aaron

AU - Green, Sarah

AU - Ye, Jianqiao

PY - 2015

Y1 - 2015

N2 - This paper investigates the dynamic structural behavior of woven-fabric reinforced composites with high matrix–fabric volume fraction as applied in the construction of crash or security barriers typified by the Inflatable Offshore Fender Barrier Structure (IOFBS). Dynamic analysis of the IOFBS comprising of over 98% of the composite under impact loading was carried out using the finite element method employing the Coupled Eulerian–Lagrangian (CEL) formulation. The barriers were inflated to 6 kPa and 7 kPa initial pneumatic fluid pressures and subjected to crash loadings from a high velocity vessel. The enclosed fluid of the structure was modeled based on the Shomate equation and fluid behavior of water on which the structure floats was modeled using Us-Up Hugoniot equation of state. The barriers' membrane stresses distributions, deformations, internal fluid pressure surge and volume variations of the structures after impact as well as vessel's degree of instability and deceleration after impact for different initial inflation pressures were computed and studied. The developed models and numerical results obtained are useful in assessing the performance of the composite as used in the IOFBS and similar structures and in improving the design of the structure.

AB - This paper investigates the dynamic structural behavior of woven-fabric reinforced composites with high matrix–fabric volume fraction as applied in the construction of crash or security barriers typified by the Inflatable Offshore Fender Barrier Structure (IOFBS). Dynamic analysis of the IOFBS comprising of over 98% of the composite under impact loading was carried out using the finite element method employing the Coupled Eulerian–Lagrangian (CEL) formulation. The barriers were inflated to 6 kPa and 7 kPa initial pneumatic fluid pressures and subjected to crash loadings from a high velocity vessel. The enclosed fluid of the structure was modeled based on the Shomate equation and fluid behavior of water on which the structure floats was modeled using Us-Up Hugoniot equation of state. The barriers' membrane stresses distributions, deformations, internal fluid pressure surge and volume variations of the structures after impact as well as vessel's degree of instability and deceleration after impact for different initial inflation pressures were computed and studied. The developed models and numerical results obtained are useful in assessing the performance of the composite as used in the IOFBS and similar structures and in improving the design of the structure.

KW - Pneumatic structures

KW - coupled Eulerian–Lagrangian

KW - finite element method

KW - impact loading

KW - offshore barrier structures

U2 - 10.1142/S0219455414500369

DO - 10.1142/S0219455414500369

M3 - Journal article

VL - 15

JO - International Journal of Structural Stability and Dynamics

JF - International Journal of Structural Stability and Dynamics

SN - 0219-4554

IS - 1

M1 - 1450036

ER -