Abstract

The concrete production processes including materials mixing, pumping, transportation, injection, pouring, moulding and compaction, are dependent on the rheological properties. Hence, in this research, the rheological properties of fresh cement paste with different content of graphene (0.03, 0.05 and 0.10% by weight of cement) were investigated. The parameters considered were test geometries (concentric cylinders and parallel plates), shear rate range (300–0.6, 200–0.6 and 100–0.6 s−1), resting time (0, 30 and 60 min) and superplasticizer dosage (0 and 0.1% by weight of cement). Four rheological prediction models such as Modified Bingham, Herschel–Bulkley, Bingham model and Casson model were chosen for the estimation of the yield stress, plastic viscosity and trend of the flow curves. The effectiveness of these rheological models in predicting the flow properties of cement paste was verified by considering the standard error method. Test results showed that the yield stress and the plastic viscosity increased with the increase in graphene content and resting time while the yield stress and the plastic viscosity decreased with the increase in the dosage of superplasticizer. At higher shear rate range, the yield stress increased while the plastic viscosities decreased. The Herschel–Bulkley model with the lowest average standard error and standard deviation value was found to best fit the experimental data, whereas, Casson model was found to be the most unfitted model. Graphene reduces the flow diameter and electrical resistivity up to 9.3 and 67.8% and enhances load carrying capacity and strain up to 16.7 and 70.1% of the composite specimen as compared with plain cement specimen. Moreover, it opened a new dimension for graphene-cement composite as smart sensing building construction material.

Highlights

  • Concrete is the most common building material used globally

  • 5 Conclusions In this research, we investigated the role of graphene to evaluate the rheological and piezoresistive properties of cement based composites

  • Following are the conclusions: 1. Generally, Bingham model and Modified Bingham model determined the highest yield stress values and HB and Casson model determined the lowest values in concentric cylinders and parallel plates, respectively

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Summary

Introduction

Concrete is the most common building material used globally. The important processes of concrete production, such as materials mixing, pumping, transportation, injection, pouring, moulding and compaction, are based on the rheology of the materials. It is known that the rheology of cement paste has a strong impact on the properties of the concrete (Ferraris 1999). With the advancement in nanotechnology, research emphasis has been moved to the effect of nanomaterials on cement composite (Kawashima et al 2013). The effect of different nanomaterials on the rheological properties of cement paste is reported by various researchers (Ormsby et al 2011; Konsta-Gdoutos et al. Rehman et al Int J Concr Struct Mater (2018) 12:64

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