Shock Wave–Induced Dynamic Mechanical Behavior of Calcium Silicate Aluminate Hydrate at the Molecular ScaleSource: Journal of Materials in Civil Engineering:;2023:;Volume ( 035 ):;issue: 008::page 04023232-1Author:Pan Shi
,
Yuxuan Lin
,
Tong Guo
,
Mengxiang Fang
,
Chao Wang
,
Yongming Tu
,
Gabriel Sas
,
Lennart Elfgren
DOI: 10.1061/JMCEE7.MTENG-15003Publisher: ASCE
Abstract: Calcium silicate aluminate hydrate (C-A-S-H) is the main hydration product of cement mixed with industrial wastes. The purpose of this study is to understand the dynamic mechanical behavior and structural transformations of molecular-scale C-A-S-H induced by shock waves. Three C-A-S-H models with Al/Si ratios of 0.0, 0.1, and 0.2 are constructed and reactive molecular dynamics simulations are used to perform shock compressions with different shock velocities from 0.1 km/s to 3.6 km/s. The distributions of particle velocity, pressure, and density along the shock direction are calculated using the binning analysis method, allowing Hugoniot pressure-specific volume curves to be derived. The results reveal that shock waves may induce elastic, elastic-plastic, or shock Hugoniot responses in molecular-scale C-A-S-H, depending on the Al/Si ratio and the shock velocity. Below the Hugoniot elastic limit (HEL), higher Al/Si ratios cause the elastic wave to propagate farther due to the cross-linking effect of aluminate units. Above the HEL, higher Al/Si ratios give rise to a distinct two-wave structure characteristic comprising a plastic front and an elastic precursor. This characteristic becomes less pronounced as the shock velocity increases. Analysis of the molecular structural transformations of C-A-S-H revealed that the main atomic deformation behavior below the HEL involves a reduction of interatomic distances; above the HEL the main response is a densification of water molecules followed by a general collapse of the layered structure as the shock velocity increases.
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contributor author | Pan Shi | |
contributor author | Yuxuan Lin | |
contributor author | Tong Guo | |
contributor author | Mengxiang Fang | |
contributor author | Chao Wang | |
contributor author | Yongming Tu | |
contributor author | Gabriel Sas | |
contributor author | Lennart Elfgren | |
date accessioned | 2023-11-27T23:40:45Z | |
date available | 2023-11-27T23:40:45Z | |
date issued | 5/25/2023 12:00:00 AM | |
date issued | 2023-05-25 | |
identifier other | JMCEE7.MTENG-15003.pdf | |
identifier uri | http://yetl.yabesh.ir/yetl1/handle/yetl/4293765 | |
description abstract | Calcium silicate aluminate hydrate (C-A-S-H) is the main hydration product of cement mixed with industrial wastes. The purpose of this study is to understand the dynamic mechanical behavior and structural transformations of molecular-scale C-A-S-H induced by shock waves. Three C-A-S-H models with Al/Si ratios of 0.0, 0.1, and 0.2 are constructed and reactive molecular dynamics simulations are used to perform shock compressions with different shock velocities from 0.1 km/s to 3.6 km/s. The distributions of particle velocity, pressure, and density along the shock direction are calculated using the binning analysis method, allowing Hugoniot pressure-specific volume curves to be derived. The results reveal that shock waves may induce elastic, elastic-plastic, or shock Hugoniot responses in molecular-scale C-A-S-H, depending on the Al/Si ratio and the shock velocity. Below the Hugoniot elastic limit (HEL), higher Al/Si ratios cause the elastic wave to propagate farther due to the cross-linking effect of aluminate units. Above the HEL, higher Al/Si ratios give rise to a distinct two-wave structure characteristic comprising a plastic front and an elastic precursor. This characteristic becomes less pronounced as the shock velocity increases. Analysis of the molecular structural transformations of C-A-S-H revealed that the main atomic deformation behavior below the HEL involves a reduction of interatomic distances; above the HEL the main response is a densification of water molecules followed by a general collapse of the layered structure as the shock velocity increases. | |
publisher | ASCE | |
title | Shock Wave–Induced Dynamic Mechanical Behavior of Calcium Silicate Aluminate Hydrate at the Molecular Scale | |
type | Journal Article | |
journal volume | 35 | |
journal issue | 8 | |
journal title | Journal of Materials in Civil Engineering | |
identifier doi | 10.1061/JMCEE7.MTENG-15003 | |
journal fristpage | 04023232-1 | |
journal lastpage | 04023232-10 | |
page | 10 | |
tree | Journal of Materials in Civil Engineering:;2023:;Volume ( 035 ):;issue: 008 | |
contenttype | Fulltext |