Numerical and Experimental Approach for Failure Analysis of Soil Subjected to Surface Explosion Loading

Controlling the hazards to facilities caused by detonation waves is a high priority in engineering design. To protect an underground facility, soil can reduce the destructive effects of detonation waves. Soil dynamic characteristics and the area of the destructive zone are affected by shock wave ene...

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Main Author: Iau-Teh Wang
Format: Article
Language:English
Published: Hindawi Limited 2021-01-01
Series:Shock and Vibration
Online Access:http://dx.doi.org/10.1155/2021/4981507
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spelling doaj-9874638ed7de43deb9a62d966774771e2021-07-26T00:35:23ZengHindawi LimitedShock and Vibration1875-92032021-01-01202110.1155/2021/4981507Numerical and Experimental Approach for Failure Analysis of Soil Subjected to Surface Explosion LoadingIau-Teh Wang0Department of Civil EngineeringControlling the hazards to facilities caused by detonation waves is a high priority in engineering design. To protect an underground facility, soil can reduce the destructive effects of detonation waves. Soil dynamic characteristics and the area of the destructive zone are affected by shock wave energy. The material at ground zero is impacted by high-intensity stress and forms a crater. To ensure the safety of the facility, the protective soil layers must be sufficiently thick. Therefore, the purpose of this study was to analyze the destructive effects that caused the deformation and destruction of an external protective soil layer. The results of the explosion experiments and the numerical simulation analysis were compared to explore the dynamic characteristics of the soil affected by the shock wave and the crater effects of on-ground explosions. The analysis model adopted an 8-node hexahedral element to create a three-dimensional solid structure model of the fluid-solid interaction. The material failure analysis demonstrated that the detonation wave destabilized the interior of the soil body, and the nearby high-intensity stress was the key factor for material failure. The results can serve as a reference for the design of soil-covering layers that provide explosion hazard control.http://dx.doi.org/10.1155/2021/4981507
collection DOAJ
language English
format Article
sources DOAJ
author Iau-Teh Wang
spellingShingle Iau-Teh Wang
Numerical and Experimental Approach for Failure Analysis of Soil Subjected to Surface Explosion Loading
Shock and Vibration
author_facet Iau-Teh Wang
author_sort Iau-Teh Wang
title Numerical and Experimental Approach for Failure Analysis of Soil Subjected to Surface Explosion Loading
title_short Numerical and Experimental Approach for Failure Analysis of Soil Subjected to Surface Explosion Loading
title_full Numerical and Experimental Approach for Failure Analysis of Soil Subjected to Surface Explosion Loading
title_fullStr Numerical and Experimental Approach for Failure Analysis of Soil Subjected to Surface Explosion Loading
title_full_unstemmed Numerical and Experimental Approach for Failure Analysis of Soil Subjected to Surface Explosion Loading
title_sort numerical and experimental approach for failure analysis of soil subjected to surface explosion loading
publisher Hindawi Limited
series Shock and Vibration
issn 1875-9203
publishDate 2021-01-01
description Controlling the hazards to facilities caused by detonation waves is a high priority in engineering design. To protect an underground facility, soil can reduce the destructive effects of detonation waves. Soil dynamic characteristics and the area of the destructive zone are affected by shock wave energy. The material at ground zero is impacted by high-intensity stress and forms a crater. To ensure the safety of the facility, the protective soil layers must be sufficiently thick. Therefore, the purpose of this study was to analyze the destructive effects that caused the deformation and destruction of an external protective soil layer. The results of the explosion experiments and the numerical simulation analysis were compared to explore the dynamic characteristics of the soil affected by the shock wave and the crater effects of on-ground explosions. The analysis model adopted an 8-node hexahedral element to create a three-dimensional solid structure model of the fluid-solid interaction. The material failure analysis demonstrated that the detonation wave destabilized the interior of the soil body, and the nearby high-intensity stress was the key factor for material failure. The results can serve as a reference for the design of soil-covering layers that provide explosion hazard control.
url http://dx.doi.org/10.1155/2021/4981507
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