High-Performance Cementitious Matrix using Carbon Nanofibers
Keywords:
Cementitious Nanocomposite, Carbon Nanofibers, High PerformanceAbstract
Graphite nanomaterials would realize their reinforcement potential within cement-based materials when they are thoroughly dispersed and effectively bonded to cement hydrates. Thorough dispersion of graphite nanomaterials in the fresh cementitious matrix encounters challenges associated with the hydrophobic nature of nanomaterial surfaces and their strong tendency towards agglomeration via attractive van der Waals forces. Effective interfacial interactions with cement hydrates are further challenged by the relatively inert nature of nanomaterial surfaces. An experimental program was conducted with the objective of effectively utilizing both acid-oxidized and pristine carbon nanofibers towards reinforcement of high-performance cementitious pastes. Hybrid reinforcement systems comprising optimum volume fraction of carbon nanofibers and micro-scale fibers were also evaluated in cementitious matrices. The improvements in nanofiber dispersion and interfacial interactions resulting from acid-oxidation and use of proper dispersion techniques were found to bring about significant gains in the engineering properties of high-performance cementitious materials.
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Bui, D. D., Hu, J., and Stroeven, P. (2005). Particle size effect on the strength of rice husk ash blended gap-graded Portland cement concrete. Cement and concrete composites, 27(3), 357-366.
Chen, S. J., Collins, F. G., Macleod, A. J. N., Pan, Z., Duan, W. H., and Wang, C. M. (2011). Carbon nanotube–cement composites: A retrospect. The IES journal part a: Civil and structural engineering, 4(4), 254-265.
D'Ambrosia, M. (2012). Early age creep and shrinkage of emerging concrete materials (Doctoral dissertation, University of Illinois at Urbana-Champaign).
Hammel, E., Tang, X., Trampert, M., Schmitt, T., Mauthner, K., Eder, A., and Pötschke, P. (2004). Carbon nanofibers for composite applications. Carbon, 42(5), 1153-1158.
Lafdi, K., Fox, W., Matzek, M., and Yildiz, E. (2008). Effect of carbon nanofiber-matrix adhesion on polymeric nanocomposite properties: Part II. Journal of nanomaterials, 2008, 5.
Lawrence, J. G., Berhan, L. M., and Nadarajah, A. (2008). Elastic properties and morphology of individual carbon nanofibers. ACS nano, 2(6), 1230-1236.
Metaxa, Z., Konsta-Gdoutos, M., and Shah, S. (2010). Carbon nanofiber-reinforced cement-based materials. Transportation research record: Journal of the transportation research board, (2142), 114-118.
Peyvandi, A., and Soroushian, P. (2015). Structural performance of dry-cast concrete nanocomposite pipes. Materials and structures, 48(1-2), 461-470.
Peyvandi, A., Soroushian, P., Balachandra, A. M., and Sobolev, K. (2013). Enhancement of the durability characteristics of concrete nanocomposite pipes with modified graphite nanoplatelets. Construction and building materials, 47, 111-117.
Sanchez, F., and Ince, C. (2009). Microstructure and macroscopic properties of hybrid carbon nanofiber/silica fume cement composites. Composites science and technology, 69(7), 1310-1318.
Sbia, L. A., Peyvandi, A., Soroushian, P., Balachandra, A. M., and Sobolev, K. (2015). Evaluation of modified-graphite nanomaterials in concrete nanocomposite based on packing density principles. Construction and building materials, 76, 413-422.
Shofner, M. L., Lozano, K., Rodríguez‐Macías, F. J., and Barrera, E. V. (2003). Nanofiber‐reinforced polymers prepared by fused deposition modeling. Journal of applied polymer science, 89(11), 3081-3090.
Xie, X. L., Mai, Y. W., and Zhou, X. P. (2005). Dispersion and alignment of carbon nanotubes in polymer matrix: A review. Materials science and engineering: R: Reports, 49(4), 89-112.
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