Flowability, Viscosity and Internal Friction of Self-Compacting Mortar as Affected by Its Mix Proportions

Authors

  • Thanapol Yanweerasak Department of Civil Engineering, Faculty of Engineering, Kasetsart University, Sriracha Campus, Chonburi, Thailand; The Innovation in Infrastructure and Construction Management Research Group, Kasetsart University, Sriracha Campus, Chonburi, Thailand
  • Burachat Kittikornjarus Department of Civil Engineering, Faculty of Engineering, Kasetsart University, Sriracha Campus, Chonburi, Thailand; The Innovation in Infrastructure and Construction Management Research Group, Kasetsart University, Sriracha Campus, Chonburi, Thailand
  • Pennapa Pakwat Department of Civil Engineering, Faculty of Engineering, Kasetsart University, Sriracha Campus, Chonburi, Thailand
  • Thitipong Plongpan Department of Civil Engineering, Faculty of Engineering, Kasetsart University, Sriracha Campus, Chonburi, Thailand
  • Anuwat Attachaiyawuth Department of Civil Engineering, Faculty of Engineering, Kasetsart University, Sriracha Campus, Chonburi, Thailand; The Innovation in Infrastructure and Construction Management Research Group, Kasetsart University, Sriracha Campus, Chonburi, Thailand

Keywords:

Flowability, Viscosity, Internal Friction, Self-compacting Mortar, Self-compacting

Abstract

The present research studied flowability, viscosity and internal friction of mortars prepared using local materials in Thailand in order to evaluate fresh properties of the mortars that can be used for the production of self-compacting concrete. The results showed that flowability increased and viscosity decreased by increasing the dosage of a superplasticizer. The utulized dosage depended on the mix proportions, which consist of sand to mortar ratio (s/m) and water to cement ratio (W/C). The suitable dosage was noted to be in the range of 0.6-2.9%. Mortars with high W/C and low s/m required lower dosage of superplasticizer comparing to those with lower W/C or higher s/m. Over dosage of superplasticizer adversely affected flowability of mortar, especially in the case of mortar with low W/C (W/C 30%). Internal friction of mortars significantly decreased with increased water content in mixtures, especially in the case of mortars with higher s/m; this is because such mortars contained higher internal friction, so increasing water could effectively reduce the internal friction. The friction reduced from 0.54 to 0.32 by increasing W/C from 40% to 45%. On the other hand, mortar with low s/m (s/m 45%) exhibited lower internal friction, so increasing the water content did not significantly affect internal friction, which remained at approximately 0.2. Mortar mixtures that can be applied to produce self-compacting concrete should contain sand to mortar ratio in the range of 45-50% and water to cement ratio in the range of 30-45%.

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Published

2021-09-30

How to Cite

Yanweerasak, T., Kittikornjarus, B., Pakwat, . P., Plongpan, T., & Attachaiyawuth, A. (2021). Flowability, Viscosity and Internal Friction of Self-Compacting Mortar as Affected by Its Mix Proportions. Science and Engineering Connect, 44(3), 409–426. retrieved from https://ph04.tci-thaijo.org/index.php/SEC/article/view/10436

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Research Article