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Modeling of porous-hardened concrete by rheological-dynamical analogy

Dragan D. Milašinović (Department of Engineering Mechanics, Faculty of Civil Engineering Subotica, University of Novi Sad, Subotica, Serbia)

Engineering Computations

ISSN: 0264-4401

Article publication date: 20 October 2023

Issue publication date: 5 December 2023

43

Abstract

Purpose

The purpose of this paper is to describe various aspects of the visco-elastoplastic (VEP) behavior of porous-hardened concrete samples in relation to standard tests.

Design/methodology/approach

The problem is formulated on the basis of the rheological-dynamic analogy (RDA). In this study, changes in creep coefficient, Poisson's ratio, damage variables, modulus of elasticity, strength and angle of internal friction as a function of porosity are defined by P and S wave velocities. The RDA model provides a description of the degradation process of material properties from their peak state to their ultimate values using void volume fraction (VVF).

Findings

Compared to numerous versions of acoustic emission tracking developed to analyze the behavior of total wave propagation in inhomogeneous media with density variations, the proposed model is comprehensive in interpretation and consistent with physical understanding. The comparison of the damage variables with the theoretical variables under the assumption of spherical voids in the spherical representative volume element (RVE) shows a satisfactory agreement of the results for all analyzed samples if the maximum porosities are used for comparison.

Originality/value

The paper presents a new mathematical-physical method for examining the effect of porosity on the characteristics of hardened concrete. Porosity is essentially related to density variations. Therefore, it was logical to define the limit values of porosity using the strain energy density.

Keywords

Citation

Milašinović, D.D. (2023), "Modeling of porous-hardened concrete by rheological-dynamical analogy", Engineering Computations, Vol. 40 No. 9/10, pp. 2615-2647. https://doi.org/10.1108/EC-08-2022-0574

Publisher

:

Emerald Publishing Limited

Copyright © 2023, Emerald Publishing Limited

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