The Numerical Investigation of Structural Strength Assessment of LNG CCS by Sloshing Impacts Based on Multiphase Fluid Model

Sloshing flows of liquid natural gas (LNG) with multi-phase flow characteristics consisting of liquids and gases can affect the load conditions and structural response of cargo containment systems (CCS). The compressible properties of the sloshing flow can limit the maximum pressure, so a multi-phas...

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Main Authors: Se-Yun Hwang, Jang-Hyun Lee
Format: Article
Language:English
Published: MDPI AG 2021-08-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/11/16/7414
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spelling doaj-0ab284f05e364841a42141f2fd4a92672021-08-26T13:29:54ZengMDPI AGApplied Sciences2076-34172021-08-01117414741410.3390/app11167414The Numerical Investigation of Structural Strength Assessment of LNG CCS by Sloshing Impacts Based on Multiphase Fluid ModelSe-Yun Hwang0Jang-Hyun Lee1Extreme Technology Research Center for Ship and Offshore Platform, INHA University, Incheon 22212, KoreaDepartment of Naval Architecture and Ocean Engineering, INHA University, Incheon 22212, KoreaSloshing flows of liquid natural gas (LNG) with multi-phase flow characteristics consisting of liquids and gases can affect the load conditions and structural response of cargo containment systems (CCS). The compressible properties of the sloshing flow can limit the maximum pressure, so a multi-phase fluid model is required to represent the sloshing physics. In this study, we identified a suitable numerical model to simulate the sloshing flow and structural strength evaluation based on the inhomogeneous fluid model. The computational fluid dynamics (CFD) is based on a Eulerian domain model, which is in turn based on the constant volume based finite element method (CVFEM) in a commercial Reynolds-averaged Navier–Stokes CFD code (ANSYS CFX). It includes the interphase momentum transfer between the liquids and gasses. The physics for the sloshing assessment were considered to identify the main aspects of the inhomogeneous multiphase model. For numerical analysis of the sloshing, we conducted a sloshing simulation on the experimental data of the model scale to examine the validity of the results. The velocity of the sloshing flow was extended to the real scale and applied to a local two-way fluid structure interaction (FSI) analysis model. Structural strength evaluation of the LNG CCS by sloshing flow was performed by FSI analysis. Through the example of structural response analysis of Mark III type CCS, the results were discussed and effectiveness of the proposed structural response assessment model by sloshing was reviewed.https://www.mdpi.com/2076-3417/11/16/7414sloshingfluid impactmulti-phase flowcomputational fluid dynamicsfluid structure interaction analysis
collection DOAJ
language English
format Article
sources DOAJ
author Se-Yun Hwang
Jang-Hyun Lee
spellingShingle Se-Yun Hwang
Jang-Hyun Lee
The Numerical Investigation of Structural Strength Assessment of LNG CCS by Sloshing Impacts Based on Multiphase Fluid Model
Applied Sciences
sloshing
fluid impact
multi-phase flow
computational fluid dynamics
fluid structure interaction analysis
author_facet Se-Yun Hwang
Jang-Hyun Lee
author_sort Se-Yun Hwang
title The Numerical Investigation of Structural Strength Assessment of LNG CCS by Sloshing Impacts Based on Multiphase Fluid Model
title_short The Numerical Investigation of Structural Strength Assessment of LNG CCS by Sloshing Impacts Based on Multiphase Fluid Model
title_full The Numerical Investigation of Structural Strength Assessment of LNG CCS by Sloshing Impacts Based on Multiphase Fluid Model
title_fullStr The Numerical Investigation of Structural Strength Assessment of LNG CCS by Sloshing Impacts Based on Multiphase Fluid Model
title_full_unstemmed The Numerical Investigation of Structural Strength Assessment of LNG CCS by Sloshing Impacts Based on Multiphase Fluid Model
title_sort numerical investigation of structural strength assessment of lng ccs by sloshing impacts based on multiphase fluid model
publisher MDPI AG
series Applied Sciences
issn 2076-3417
publishDate 2021-08-01
description Sloshing flows of liquid natural gas (LNG) with multi-phase flow characteristics consisting of liquids and gases can affect the load conditions and structural response of cargo containment systems (CCS). The compressible properties of the sloshing flow can limit the maximum pressure, so a multi-phase fluid model is required to represent the sloshing physics. In this study, we identified a suitable numerical model to simulate the sloshing flow and structural strength evaluation based on the inhomogeneous fluid model. The computational fluid dynamics (CFD) is based on a Eulerian domain model, which is in turn based on the constant volume based finite element method (CVFEM) in a commercial Reynolds-averaged Navier–Stokes CFD code (ANSYS CFX). It includes the interphase momentum transfer between the liquids and gasses. The physics for the sloshing assessment were considered to identify the main aspects of the inhomogeneous multiphase model. For numerical analysis of the sloshing, we conducted a sloshing simulation on the experimental data of the model scale to examine the validity of the results. The velocity of the sloshing flow was extended to the real scale and applied to a local two-way fluid structure interaction (FSI) analysis model. Structural strength evaluation of the LNG CCS by sloshing flow was performed by FSI analysis. Through the example of structural response analysis of Mark III type CCS, the results were discussed and effectiveness of the proposed structural response assessment model by sloshing was reviewed.
topic sloshing
fluid impact
multi-phase flow
computational fluid dynamics
fluid structure interaction analysis
url https://www.mdpi.com/2076-3417/11/16/7414
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AT janghyunlee thenumericalinvestigationofstructuralstrengthassessmentoflngccsbysloshingimpactsbasedonmultiphasefluidmodel
AT seyunhwang numericalinvestigationofstructuralstrengthassessmentoflngccsbysloshingimpactsbasedonmultiphasefluidmodel
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