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Title
[2020] [Hyung-Ho Park ] Mechanical modeling and simulation of aerogels: A review
Date
2021.09.27
Writer
AMRC
게시글 내용

Mechanical modeling and simulation of aerogels: A review


Abstract


Aerogels are solids with exceptional characteristics, such as ultra-low density, high surface area, high porosity, high adsorption and low-thermal conductivity. Due to these characteristics, aerogels are emerging to be a popular material among the scientific community, since their discovery in 1931. However, their applicability has remained questionable due to the poor mechanical characteristics, such as brittleness and low tensile strength. In the last three decades, due to the rapid development in the computational resources and numerical methods, a deeper understanding of physical behavior and properties of these materials have been extensively investigated. In this work, an effort is made to critically analyze and categorize the computational models and simulation results available for silica, carbon, carbon nanotubes, graphene, and cellulose aerogels. This work focused on a better understanding of how these materials were computationally modeled and simulated over the time-period and at different length-scales, wherein primary approaches, such as molecular dynamics (MD), coarse-grained, micromechanical multiscale and continuum mechanics modeling, were discussed. It also strives to give an insight into the areas where further computational studies are required, which could lead to numerous other application fields. The systematic review provides a mechanistic basis for reliable applications of aerogels.


논문정보

Ceramics International  Volume 47, Issue 3, 1 February 2021, Pages 2981-2998                                                                                               Received 3 August 2020, Revised 16 September 2020, Accepted 18 September 2020, Available online 28 September 2020.                          Authors: Sandeep P.Patil, Vinayak G. Parale, Hyung-Ho Park, Bernd Markert


DOI :  https://doi.org/10.1016/j.ceramint.2020.09.181