contributor author | Brubeck Lee Freeman | |
contributor author | Anthony Jefferson | |
date accessioned | 2023-08-16T19:02:16Z | |
date available | 2023-08-16T19:02:16Z | |
date issued | 2023/07/01 | |
identifier other | JENMDT.EMENG-6944.pdf | |
identifier uri | http://yetl.yabesh.ir/yetl1/handle/yetl/4292659 | |
description abstract | Interest in self-healing techniques that can enhance the performance of cementitious materials has been ever increasing over the past two decades. Alongside the experimental developments, a great deal of progress has been made on the development of numerical models for simulating the self-healing behavior. In spite of this, many models do not consider the coupled physical processes that govern the healing response. In addition, few are developed in a 3D setting that is necessary for many self-healing systems. This study aims to address this through the development of a new 3D coupled model for simulating self-healing cementitious materials. Key features of the model are a new embedded strong discontinuity hexahedral element that employs a damage-healing cohesive zone model to describe the mechanical behavior, a new approach for describing the dependence of the mechanical regain on healing agent transport based on a local crack filling function, and a generalized healing front model that is applicable to different healing agents. The performance of the model is demonstrated with a healing front study and experimental tests on self-healing cementitious specimens. The examples consider a vascular self-healing cementitious specimen that uses a sodium silicate solution as the healing agent and the autogenous healing of a cementitious specimen with and without crystalline admixtures. The results of the validations show that the model is able to reproduce the experimentally observed behavior with good accuracy. | |
publisher | American Society of Civil Engineers | |
title | A 3D Coupled Finite-Element Model for Simulating Mechanical Regain in Self-Healing Cementitious Materials | |
type | Journal Article | |
journal volume | 149 | |
journal issue | 7 | |
journal title | Journal of Engineering Mechanics | |
identifier doi | 10.1061/JENMDT.EMENG-6944 | |
journal fristpage | 04023038-1 | |
journal lastpage | 04023038-11 | |
page | 11 | |
tree | Journal of Engineering Mechanics:;2023:;Volume ( 149 ):;issue: 007 | |
contenttype | Fulltext | |