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Numerical simulation of Submarine non-rigid landslide by an explicit three-step incompressible smoothed particle hydrodynamics

Authorized Users Only
2021
Authors
Hosseini Mobara, Seyed Erfan
Ghobadian, Rasool
Rouzbahani, Fardin
Đorđević, Dejana
Article (Published version)
,
Elsevier
Metadata
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Abstract
Deformable landslide body is modeled as a rheological material when SPH methods are used for numerical simulations. To increase accuracy, Carreau-Yasuda rheological model is chosen in this study. The model overcomes the weakness of the power-law model in predicting viscosity at zero and infinite shear strain rates. Also, a fully explicit three-step algorithm is proposed to solve governing equations. In the first step, intermediate velocities are computed in the presence of body forces. In the second step , they are used to compute divergence of stress tensor and to find intermediate particle positions. In the third step, pressure gradient in the momentum equation is merged with the continuity equation, and final particle velocity is calculated at the end of the time step. The algorithm is used in combination with Carreau-Yasuda model to simulate submarine non-rigid landslide. Comparison with experimental data indicates good agreement between calculated and observed water surface elevat...ions with very low L2 relative error norm(εL2) and RMSE values. They are up to 70% lower than those from previous studies when Cross and Bingham rheological models were used with ISPH and WCSPH models, respectively. Moreover, shape and advancement of the non-rigid body made of sand are well captured.

Keywords:
Smoothed particle hydrodynamics / Non-Newtonian fluid / Carreau-Yasuda model / Submarine landslide / Lagrangian method
Source:
Engineering Analysis with Boundary Elements, 2021, 130, 196-208
Publisher:
  • Elsevier
Funding / projects:
  • Ministry of Education, Science and Technological Development, Republic of Serbia, Grant no. 200092 (University of Belgrade, Faculty of Civil Engineering) (RS-200092)

DOI: 10.1016/j.enganabound.2021.05.025

ISSN: 0955-7997

WoS: 000669628200006

[ Google Scholar ]
URI
https://www.sciencedirect.com/science/article/pii/S0955799721001545
https://grafar.grf.bg.ac.rs/handle/123456789/2449
Collections
  • Катедра за хидротехнику и водно-еколошко инжењерство
  • Radovi istraživača / Researcher's publications
Institution/Community
GraFar
TY  - JOUR
AU  - Hosseini Mobara, Seyed Erfan
AU  - Ghobadian, Rasool
AU  - Rouzbahani, Fardin
AU  - Đorđević, Dejana
PY  - 2021
UR  - https://www.sciencedirect.com/science/article/pii/S0955799721001545
UR  - https://grafar.grf.bg.ac.rs/handle/123456789/2449
AB  - Deformable landslide body is modeled as a rheological material when SPH methods are used for numerical simulations. To increase accuracy, Carreau-Yasuda rheological model is chosen in this study. The model overcomes the weakness of the power-law model in predicting viscosity at zero and infinite shear strain rates. Also, a fully explicit three-step algorithm is proposed to solve governing equations. In the first step, intermediate velocities are computed in the presence of body forces. In the second step , they are used to compute divergence of stress tensor and to find intermediate particle positions. In the third step, pressure gradient in the momentum equation is merged with the continuity equation, and final particle velocity is calculated at the end of the time step. The algorithm is used in combination with Carreau-Yasuda model to simulate submarine non-rigid landslide. Comparison with experimental data indicates good agreement between calculated and observed water surface elevations with very low L2 relative error norm(εL2) and RMSE values. They are up to 70% lower than those from previous studies when Cross and Bingham rheological models were used with ISPH and WCSPH models, respectively. Moreover, shape and advancement of the non-rigid body made of sand are well captured.
PB  - Elsevier
T2  - Engineering Analysis with Boundary Elements
T1  - Numerical simulation of Submarine non-rigid landslide by an explicit three-step incompressible smoothed particle hydrodynamics
EP  - 208
SP  - 196
VL  - 130
DO  - 10.1016/j.enganabound.2021.05.025
ER  - 
@article{
author = "Hosseini Mobara, Seyed Erfan and Ghobadian, Rasool and Rouzbahani, Fardin and Đorđević, Dejana",
year = "2021",
abstract = "Deformable landslide body is modeled as a rheological material when SPH methods are used for numerical simulations. To increase accuracy, Carreau-Yasuda rheological model is chosen in this study. The model overcomes the weakness of the power-law model in predicting viscosity at zero and infinite shear strain rates. Also, a fully explicit three-step algorithm is proposed to solve governing equations. In the first step, intermediate velocities are computed in the presence of body forces. In the second step , they are used to compute divergence of stress tensor and to find intermediate particle positions. In the third step, pressure gradient in the momentum equation is merged with the continuity equation, and final particle velocity is calculated at the end of the time step. The algorithm is used in combination with Carreau-Yasuda model to simulate submarine non-rigid landslide. Comparison with experimental data indicates good agreement between calculated and observed water surface elevations with very low L2 relative error norm(εL2) and RMSE values. They are up to 70% lower than those from previous studies when Cross and Bingham rheological models were used with ISPH and WCSPH models, respectively. Moreover, shape and advancement of the non-rigid body made of sand are well captured.",
publisher = "Elsevier",
journal = "Engineering Analysis with Boundary Elements",
title = "Numerical simulation of Submarine non-rigid landslide by an explicit three-step incompressible smoothed particle hydrodynamics",
pages = "208-196",
volume = "130",
doi = "10.1016/j.enganabound.2021.05.025"
}
Hosseini Mobara, S. E., Ghobadian, R., Rouzbahani, F.,& Đorđević, D.. (2021). Numerical simulation of Submarine non-rigid landslide by an explicit three-step incompressible smoothed particle hydrodynamics. in Engineering Analysis with Boundary Elements
Elsevier., 130, 196-208.
https://doi.org/10.1016/j.enganabound.2021.05.025
Hosseini Mobara SE, Ghobadian R, Rouzbahani F, Đorđević D. Numerical simulation of Submarine non-rigid landslide by an explicit three-step incompressible smoothed particle hydrodynamics. in Engineering Analysis with Boundary Elements. 2021;130:196-208.
doi:10.1016/j.enganabound.2021.05.025 .
Hosseini Mobara, Seyed Erfan, Ghobadian, Rasool, Rouzbahani, Fardin, Đorđević, Dejana, "Numerical simulation of Submarine non-rigid landslide by an explicit three-step incompressible smoothed particle hydrodynamics" in Engineering Analysis with Boundary Elements, 130 (2021):196-208,
https://doi.org/10.1016/j.enganabound.2021.05.025 . .

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