4.7 Article

Computational homogenization of elastic-viscoplastic refractory masonry with dry joints

Journal

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijmecsci.2021.106275

Keywords

Nonlinear homogenization; Computational homogenization; Refractories; Masonry; Creep; Modelling

Funding

  1. European Commission, Marie Skllodowska Curie Actions Innovative Training Networks [764987]
  2. Marie Curie Actions (MSCA) [764987] Funding Source: Marie Curie Actions (MSCA)

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Refractory masonry with dry joints is widely used in the steel-making industry for high-temperature components. A homogenized multi-scale elastic-viscoplastic model is developed and successfully validated to predict the mechanical behavior of refractory masonry structures under different loading conditions, taking into account joints closure and reopening. Good agreements between experimental and numerical results were obtained, confirming the accuracy of the model.
Refractory masonry with dry joints is widely used in the steel-making industry for the linings of several high-temperature components (>1500 degrees C) including steel ladles and furnaces. To properly optimize the design and performance of these linings, thorough numerical models that consider the presence of joints, joints closure and reopening and the nonlinear elastic-viscoplastic behaviour (creep and stress relaxation) of refractories at high temperature are required. The present study reports on the formulation, numerical implementation, and application of a homogenized mull-scale elastic-viscoplastic model for the simulation of refractory masonry linings with dry joints. Refractory bricks are considered to exhibit linear elasticity as well as rate-dependent plasticity. Four joint patterns are predefined based on the state of bed and head joints. The homogenized elasticvisco-plastic behaviour of each joint pattern is determined using finite element based nonlinear homogenization approach. The transition criteria between the four patterns are defined in terms of macroscopic stresses and strains. Verification of the developed homogenized constitutive laws is carried out by comparing the numerical results of the detailed micro models (brick and joints are considered) with the homogeneous equivalent material models. Furthermore, comparisons with experimental results of refractory masonry walls subjected to biaxial compression load at room and high temperature are carried out. Good agreements between the experimental and numerical results are obtained. Then, the validated models are employed to predict the mechanical behavior of refractory masonry structures subjected to different loading conditions. The present numerical model is able to simulate the orthotropic, compressible, rate-dependent homogenized behaviour of mortarless refractory masonry structures, and accounts for joints closure and reopening due to loading and unloading.

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