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Benchmark exercise on image-based permeability determination of engineering textiles: Microscale predictions

  • E. Syerko
  • , T. Schmidt
  • , D. May
  • , C. Binetruy
  • , S. G. Advani
  • , S. Lomov
  • , L. Silva
  • , S. Abaimov
  • , N. Aissa
  • , I. Akhatov
  • , M. Ali
  • , N. Asiaban
  • , G. Broggi
  • , J. Bruchon
  • , B. Caglar
  • , H. Digonnet
  • , J. Dittmann
  • , S. Drapier
  • , A. Endruweit
  • , A. Guilloux
  • R. Kandinskii, A. Leygue, B. Mahato, P. Martínez-Lera, M. Matveev, V. Michaud, P. Middendorf, N. Moulin, L. Orgéas, C. H. Park, S. Rief, M. Rouhi, I. Sergeichev, M. Shakoor, O. Shishkina, Y. Swolfs, M. Tahani, R. Umer, K. Vanclooster, R. Vorobyev
    • Institut de Recherche en Génie Civil et Mécanique
    • Leibniz-Institut für Verbundwerkstoffe GmbH
    • University of Delaware
    • KU Leuven
    • Skolkovo Institute of Science and Technology
    • Department of Aerospace Engineering
    • Ferdowsi University of Mashhad
    • EPFL CDM MTEI RAO
    • Université de Lyon
    • University of Stuttgart
    • University of Nottingham
    • TENSYL SARL
    • Siemens Industry Software NV
    • UJF-Grenoble 1/CNRS-INSU
    • Université Lille 1
    • Fraunhofer-Institut für Techno- und Wirtschaftsmathematik (ITWM)
    • Division Materials and Production – RISE SICOMP AB
    • National University of Singapore

    Research output: Contribution to journalArticlepeer-review

    42 Scopus citations

    Abstract

    Permeability measurements of engineering textiles exhibit large variability as no standardization method currently exists; numerical permeability prediction is thus an attractive alternative. It has all advantages of virtual material characterization, including the possibility to study the impact of material variability and small-scale parameters. This paper presents the results of an international virtual permeability benchmark, which is a first contribution to permeability predictions for fibrous reinforcements based on real images. In this first stage, the focus was on the microscale computation of fiber bundle permeability. In total 16 participants provided 50 results using different numerical methods, boundary conditions, permeability identification techniques. The scatter of the predicted axial permeability after the elimination of inconsistent results was found to be smaller (14%) than that of the transverse permeability (∼24%). Dominant effects on the permeability were found to be the boundary conditions in tangential direction, number of sub-domains used in the renormalization approach, and the permeability identification technique.

    Original languageBritish English
    Article number107397
    JournalComposites Part A: Applied Science and Manufacturing
    Volume167
    DOIs
    StatePublished - Apr 2023

    Keywords

    • A. Fabrics/textiles
    • A. Tow
    • B. Permeability
    • C. Computational modelling
    • E. Resin flow

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