Literature DB >> 34300934

Nonlinear Mechanical Effect of Free Water on the Dynamic Compressive Strength and Fracture of High-Strength Concrete.

Evgeny V Shilko1, Igor S Konovalenko2, Ivan S Konovalenko2.   

Abstract

It is well-known that the effect of interstitial fluid on the fracture pattern and strength of saturated high-strength concrete is determined by qualitatively different mechanisms at quasi-static and high strain rate loading. This paper shows that the intermediate range of strain rates (10-4 s-1 < ε˙ < 100 s-1) is also characterized by the presence of a peculiar mechanism of interstitial water effect on the concrete fracture and compressive strength. Using computer simulations, we have shown that such a mechanism is the competition of two oppositely directed processes: deformation of the pore space, which leads to an increase in pore pressure; and pore fluid flow. The balance of these processes can be effectively characterized by the Darcy number, which generalizes the notion of strain rate to fluid-saturated material. We have found that the dependence of the compressive strength of high-strength concrete on the Darcy number is a decreasing sigmoid function. The parameters of this function are determined by both low-scale (capillary) and large-scale (microscopic) pore subsystems in a concrete matrix. The capillary pore network determines the phenomenon of strain-rate sensitivity of fluid-saturated concrete and logistic form of the dependence of compressive strength on strain rate. Microporosity controls the actual boundary of the quasi-static loading regime for fluid-saturated samples and determines localized fracture patterns. The results of the study are relevant to the design of special-purpose concretes, as well as the assessment of the limits of safe impacts on concrete structural elements.

Entities:  

Keywords:  compressive strength; computer simulation; coupled poroelastic model; discrete element method; dynamic loading; fluid filtration; fracture; permeability; two-scale porosity; water-saturated concrete

Year:  2021        PMID: 34300934     DOI: 10.3390/ma14144011

Source DB:  PubMed          Journal:  Materials (Basel)        ISSN: 1996-1944            Impact factor:   3.623


  1 in total

1.  Analysis of the Quasi-Static and Dynamic Fracture of the Silica Refractory Using the Mesoscale Discrete Element Modelling.

Authors:  Aleksandr S Grigoriev; Andrey V Zabolotskiy; Evgeny V Shilko; Andrey I Dmitriev; Kirill Andreev
Journal:  Materials (Basel)       Date:  2021-12-01       Impact factor: 3.623

  1 in total

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