Computational Generation of Multiphase Asphalt Nanostructures Using Random Fields

Mohammad Aljarrah, Ayman Karaki, Eyad Masad*, Daniel Castillo, Silvia Caro, Dallas Little

*Corresponding author for this work

Research output: Contribution to journalArticleScientificpeer-review

5 Citations (Scopus)
67 Downloads (Pure)

Abstract

This study presents a novel methodology to generate computational replicates of nanostructures of multiphase materials, such as asphalt binders, by integrating image analysis techniques with stochastic random field (RF) modeling. Image analysis techniques are used to identify and segment nanostructure images obtained by atomic force microscopy, while RF is used to model the spatial distribution of their material properties. The results of this process are images showing probable arrangements of nanostructures with stochastic material properties that replicate the experimentally obtained images. The computationally generated nanostructures are then used as inputs in a finite element model to evaluate the effect of heterogeneity on their mechanical response. The efficacy of the developed approach is demonstrated through simulations of asphalt binders’ nanostructures, which reveal novel insights regarding their nanoscale mechanical behavior and response. The FE simulations provided the link between the distribution of nanoscale properties of asphalt binders and variations in their mechanical response. The application of this methodology expands the body of knowledge beyond the deterministic analysis of asphalt binders toward probabilistic analysis and uncertainty quantification that considers their heterogeneous, multiphase structures. Consequently, the methodology can be used to design multiphase materials, such as asphaltic blends, with tailored properties and enhanced performance.
Original languageEnglish
Pages (from-to)1639-1653
Number of pages15
JournalComputer Aided Civil and Infrastructure Engineering
Volume37
Issue number13
Early online date1 Aug 2022
DOIs
Publication statusPublished - Nov 2022
MoE publication typeA1 Journal article-refereed

Keywords

  • multiphase materials
  • nanostructures
  • asphalt binders
  • random fields
  • image analysis
  • atomic force microscope
  • finite element modeling

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