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Non-homogeneous granular micromechanic-based numerical simulations for ultra-high-performance fiber-reinforced concrete (UHP-FRC) in compression, tension and three-point bending tests

  • 03-07-2025
  • Research
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Abstract

This article delves into the advanced modeling of Ultra-High-Performance Fiber-Reinforced Concrete (UHP-FRC) using granular micromechanics and strain gradient theories. It presents a comprehensive analysis of experimental results from compression, tension, and three-point bending tests, providing valuable insights into the material's behavior under different loading conditions. The article introduces a novel numerical approach that incorporates strain gradient effects within the Finite Element Method (FEM) framework, offering a more accurate prediction of UHP-FRC's mechanical response. It also explores the evolution of damage and plasticity in the material, highlighting the anisotropic and chiral effects in damage distribution. The study demonstrates the utility of the strain gradient framework in capturing complex behaviors and provides a robust model for simulating the mechanical response of UHP-FRC. Additionally, the article presents parametric studies that assess the impact of variations in material parameters, offering valuable information for optimizing the mechanical performance of UHP-FRC. The findings contribute to the advancement of high-performance concrete materials, making them more accessible and reliable for engineering applications subjected to extreme loading conditions.

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Title
Non-homogeneous granular micromechanic-based numerical simulations for ultra-high-performance fiber-reinforced concrete (UHP-FRC) in compression, tension and three-point bending tests
Authors
Abdou Kandalaft
Anil Misra
Luca Placidi
Francesco Fabbrocino
Publication date
03-07-2025
Publisher
Springer Netherlands
Published in
Meccanica / Issue 10-11/2025
Print ISSN: 0025-6455
Electronic ISSN: 1572-9648
DOI
https://doi.org/10.1007/s11012-025-02009-y
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    in-adhesives, MKVS, Ecoclean/© Ecoclean, Hellmich GmbH/© Hellmich GmbH, Krahn Ceramics/© Krahn Ceramics, Kisling AG/© Kisling AG, ECHTERHAGE HOLDING GMBH&CO.KG - VSE, Schenker Hydraulik AG/© Schenker Hydraulik AG