4.7 Article

Cement Composites with Graphene Nanoplatelets and Recycled Milled Carbon Fibers Dispersed in Air Nanobubble Water

期刊

NANOMATERIALS
卷 12, 期 16, 页码 -

出版社

MDPI
DOI: 10.3390/nano12162786

关键词

graphene nanoplatelets; recycle carbon fibers; air nanobubbles; cement-based composites and nanocomposites; mechanical properties; electrical properties

资金

  1. European Regional Development Fund of the European Union
  2. Greek national funds through the Operational Program Competitiveness, Entrepreneurship, and Innovation [T1EAK-02692, MIS: 5030194]

向作者/读者索取更多资源

This study experimentally examined the individual effect of nano- and micro-carbon-based fillers on the mechanical and electrical properties of cement paste. The results showed that the addition of graphene nanoplatelets (GNPs) and recycled milled carbon fibers (rCFs) significantly improved the compressive and flexural strength of the cement composites, as well as reduced the electrical resistivity.
The individual effect of nano- and micro-carbon-based fillers on the mechanical and the electrical properties of cement paste were experimentally examined in this study. The objective of the study was to separately examine the effects of size and morphology (platelets and fibers) of nano- and micro-reinforcement. Three different sizes of Graphene Nanoplatelets (GNPs), at contents of 0.05% and 0.20% and recycled milled carbon fibers (rCFs), at various dosages from 0.1-2.5% by weight of cement, were incorporated into the cementitious matrix. GNPs and rCFs were dispersed in water with air nanobubbles (NBs), an innovative method that, compared to common practice, does not require the use of chemicals or high ultrasonic energy. Compressive and bending tests were performed on GNPs- and rCFs-composites. The four-wire-method was used to evaluate the effect of the conductive fillers on the electrical resistivity of cement paste. The compressive and flexural strength of all the cementitious composites demonstrated a considerable increase compared to the reference specimens. Improvement of 269.5% and of 169% was observed at the compressive and flexural strength, respectively, at the GNPs-cement composites incorporating the largest lateral size GNPs at a concentration of 0.2% by weight of cement. Moreover, the rCFs-cement composites increased their compressive and flexural strength by 186% and 210%, respectively, compared to the reference specimens. The electrical resistivity of GNPs- and rCFs-composite specimens reduced up to 59% and 48%, respectively, compared to the reference specimens, which proves that the incorporation of GNPs and rCFs can create a conductive network within the cementitious matrix.

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