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An Elastic‐Inelastic Model and Embedded Bounce‐Back-Control for Layered Printing with Cementitious Materials (2022-05)

10.1002/nme.7044

 Wijaya Ignasius,  Kreiger Eric,  Masud Arif
Journal Article - International Journal for Numerical Methods in Engineering, Vol. ahead-of-print, Iss. ahead-of-print

Abstract

This paper presents a finite-deformation model for extrusion-based layered printing with cementitious materials. The evolution of mechanical properties as the printed material cures and stiffens results in non-physical reduction in the magnitude of elastic strains when standard constitutive models are employed. This elastic recovery of the printing induced deformation contradicts the experimentally observed behavior of the printed cementitious materials that harden at a nearly-frozen deformed state. A thermodynamically motivated constraint on the evolution of elastic strains is imposed on the constitutive model to remedy the non-physical bounce-back effect. An algorithm that is based on a strain-projection technique for the elastic part of deformation is developed that complements the inelastic response given by the Drucker-Prager model. It is then embedded in a finite strain finite element framework for the modeling and simulation of cure hardening and inelastic response of the early age cementitious materials. A ghost mesh method is proposed for continuous layer-wise printing of the material without the need for intermittent mesh generation technique or adaptive remeshing methods. The model is validated via comparison with experimental data and representative test cases are presented that investigate the mathematical and computational attributes of the proposed model.

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2 Citations

  1. Chen Qinbin, Barbat Gabriel, Cervera Miguel (2025-06)
    Finite Element Buildability Analysis of 3D Printed Concrete Including Failure by Elastic Buckling and Plastic Flow
  2. Wijaya Ignasius, Kreiger Eric, Masud Arif (2024-03)
    Modeling of Concrete Printing Process with Frictional Interface

BibTeX
@article{wija_krei_masu.2022.AEIMaEBBCfLPwCM,
  author            = "Ignasius P. A. Wijaya and Eric L. Kreiger and Arif Masud",
  title             = "An Elastic‐Inelastic Model and Embedded Bounce‐Back-Control for Layered Printing with Cementitious Materials",
  doi               = "10.1002/nme.7044",
  year              = "2022",
  journal           = "International Journal for Numerical Methods in Engineering",
  volume            = "ahead-of-print",
  number            = "ahead-of-print",
}
Formatted Citation

I. P. A. Wijaya, E. L. Kreiger and A. Masud, “An Elastic‐Inelastic Model and Embedded Bounce‐Back-Control for Layered Printing with Cementitious Materials”, International Journal for Numerical Methods in Engineering, vol. ahead-of-print, no. ahead-of-print, 2022, doi: 10.1002/nme.7044.

Wijaya, Ignasius P. A., Eric L. Kreiger, and Arif Masud. “An Elastic‐Inelastic Model and Embedded Bounce‐Back-Control for Layered Printing with Cementitious Materials”. International Journal for Numerical Methods in Engineering ahead-of-print, no. ahead-of-print (2022). https://doi.org/10.1002/nme.7044.