Micro-nano scale pore structure and fractal dimension of ultra-high performance cementitious composites modified with nanofillers

Cement and Concrete Composites - Tập 141 - Trang 105129 - 2023
Jialiang Wang1,2, Xinyue Wang2, Siqi Ding3, Ashraf Ashour4, Feng Yu2, Xingjun Lv2, Baoguo Han2
1Jiangsu Bote New Materials Co, Ltd, Nanjing, 210008, Jiangsu, China
2School of Civil Engineering, Dalian University of Technology, Dalian, 116024, China
3School of Civil and Environmental Engineering, Harbin Institute of Technology, Shenzhen 518055, China
4Faculty of Engineering & Informatics, University of Bradford, Bradford BD7 1DP, UK

Tài liệu tham khảo

Yoo, 2022, Nanomaterials in ultra-high-performance concrete (UHPC)-A review, Cement Concr. Compos., 134, 10.1016/j.cemconcomp.2022.104730 Bonneau, 1996, Reactive powder concretes: from theory to practice, Concr. Int., 18, 47 Long, 2002, Very-high-performance concrete with ultrafine powders, Cement Concr. Res., 32, 601, 10.1016/S0008-8846(01)00732-3 Wu, 2005, Experimental study on impact compression of steel fiber high strength concrete, Explos. Shock Waves, 25, 125 Bischoff, 1991, Compressive behavior of concrete at high strain rates, Mater. Struct., 24, 45, 10.1007/BF02472016 Okeil, 2001, Short-term tensile strength of carbon fiber-reinforced polymer laminates for flexural strengthening of concrete girders, ACI Struct., 98, 470 Han, 2016, Microstructure related mechanical behaviors of short-cut super-fine stainless wire reinforced reactive powder concrete, Mater. Des., 96, 16, 10.1016/j.matdes.2016.02.004 Branston, 2016, Mechanical behavior of basalt fiber reinforced concrete, Construct. Build. Mater., 124, 878, 10.1016/j.conbuildmat.2016.08.009 Liu, 2019, Recent advance of chemical admixtures in concrete, Cement Concr. Res., 124, 10.1016/j.cemconres.2019.105834 Wang, 2012, Preparation of ultra-high performance concrete with common technology and materials, Cement Concr. Compos., 34, 538, 10.1016/j.cemconcomp.2011.11.005 Zweben, 1968, Tensile failure of fiber composites, AIAA J., 6, 2325, 10.2514/3.4990 Wang, 2013, Research on the durability of reactive pow der concrete, Concrete, 12 Hyalit, 2010, Mechanical properties of reactive powder concrete containing high volumes of ground granulated blast furnace slag, Cement Concr. Compos., 32, 639, 10.1016/j.cemconcomp.2010.07.005 Abidab, 2017, High temperature and residual properties of reactive powder concrete-A review, Construct. Build. Mater., 147, 339, 10.1016/j.conbuildmat.2017.04.083 Yazici, 2009, Mechanical properties of reactive powder concrete containing mineral admixtures under different curing regimes, Construct. Build. Mater., 23, 1223, 10.1016/j.conbuildmat.2008.08.003 Canbaz, 2014, The effect of high temperature on reactive powder concrete, Construct. Build. Mater., 70, 508, 10.1016/j.conbuildmat.2014.07.097 Roels, 2004, A comparison of different techniques to quantify moisture content profiles in porous building materials, J. Build. Phys., 27, 261 Dunn, 2002 Luo, 2013, Characterization of pore structure of cement-based materials by water vapor sorption isotherms, J. Chin. Ceram. Soc., 1401 Zhou, 2019, Experimental investigation on the effect of pore characteristics on clogging risk of pervious concrete based on CT scanning, Construct. Build. Mater., 212, 130, 10.1016/j.conbuildmat.2019.03.310 Diamond, 2000, Mercury porosimetry: an inappropriate method for the measurement of pore size distributions in cement-based materials, Cement Concr. Res., 30, 1517, 10.1016/S0008-8846(00)00370-7 Zhao, 2018, Pore structure characterization of coal by synchrotron radiation nano-CT, Fuel, 215, 102, 10.1016/j.fuel.2017.11.014 Haugen, 2020, Nano-CT as tool for characterization of dental resin composites, Sci. Rep., 10, 10.1038/s41598-020-72599-y Liu, 2018, Multifractal characteristics of Longmaxi Shale pore structures by N2 adsorption: a model comparison, J. Petrol. Sci. Eng., 168, 330, 10.1016/j.petrol.2018.04.072 Lee, 2018, Uncovering the role of micro silica in hydration of ultra-high performance concrete (UHPC) [J], Cement Concr. Res., 104, 68, 10.1016/j.cemconres.2017.11.002 Oertel, 2014, Influence of amorphous silica on the hydration in ultra-high performance concrete [J], Cement Concr. Res., 58, 121, 10.1016/j.cemconres.2014.01.006 Givi, 2010, Experimental investigation of the size effects of SiO2 nanoparticles on the mechanical properties of binary blended concrete, Compos. B Eng., 41, 673, 10.1016/j.compositesb.2010.08.003 Wang, 2020, Han. Effect and mechanisms of nanomaterials on interface between aggregates and cement mortars, Construct. Build. Mater., 240, 10.1016/j.conbuildmat.2019.117942 Oh, 2021, Deposition of nanosilica particles on fiber surface for improving interfacial bond and tensile performances of ultra-high-performance fiber-reinforced concrete, Compos. B Eng., 221, 10.1016/j.compositesb.2021.109030 Kong, 2012, Influence of nano-silica agglomeration on microstructure and properties of the hardened cement-based materials, Construct. Build. Mater., 37, 707, 10.1016/j.conbuildmat.2012.08.006 Zhang, 2015, Influences of nano-TiO2 on the properties of cement-based materials: hydration and drying shrinkage, Construct. Build. Mater., 81, 35, 10.1016/j.conbuildmat.2015.02.003 Qian, 2000, Load transfer and deformation mechanisms in carbon nanotube-polystyrene composites, Appl. Phys. Lett., 76, 2868, 10.1063/1.126500 Chaipanich, 2017, The effect of carbon nanotubes and silica fume on compressive strength and flexural strength of cement mortars, Mater. Today, 4, 6065, 10.1016/j.matpr.2017.06.095 Wang, 2022, Nanomechanical characteristics of interfacial transition zone in nano-engineered concrete, Engineering, 17, 99, 10.1016/j.eng.2020.08.025 Nazari, 2010, The effect of TiO2 nanoparticles on water permeability and thermal and mechanical properties of high strength self-compacting concrete, Mater. Sci. Eng., A, 528, 756, 10.1016/j.msea.2010.09.074 Nazari, 2011, TiO2 nanoparticles effects on physical, thermal and mechanical properties of self-compacting concrete with ground granulated blast furnace slag as binder, Energy Build., 43, 995, 10.1016/j.enbuild.2010.12.025 Han, 2017, Nano-core effect in nano-engineered cementitious composites, Compos. Appl. Sci. Manuf., 95, 100, 10.1016/j.compositesa.2017.01.008 Meng, 2016, Mechanical properties of ultra-high-performance concrete enhanced with graphite nanoplatelets and carbon nanofibers, Compos. B Eng., 107, 113, 10.1016/j.compositesb.2016.09.069 He, 2015 Han, 2019 Wang, 2022, Tailoring anti-impact properties of ultra-high performance concrete by incorporating functionalized carbon nanotubes, Engineering, 18, 232, 10.1016/j.eng.2021.04.030 Han, 2018, Graphene size-dependent multifunctional properties of unidirectional graphene aerogel/epoxy nanocomposites, ACS Appl. Mater. Interfaces, 10, 6580, 10.1021/acsami.7b19069 Du, 2015, Enhancement of barrier properties of cement mortar with graphene nanoplate, Cement Concr. Res., 76, 10, 10.1016/j.cemconres.2015.05.007 Zheng, 2017, Graphene-engineered cementitious composites: small makes a big impact, Nanomater. Nanotechnol., 7, 10.1177/1847980417742304 Li, 2016, Incorporation of graphene oxide and silica fume into cement paste: a study of dispersion and compressive strength, Construct. Build. Mater., 123, 327, 10.1016/j.conbuildmat.2016.07.022 Huang, 2005, Aligned carbon nanotube composite films for the thermal management, Adv. Mater., 17, 1652, 10.1002/adma.200500467 He, 2015 Saez de Ibarra, 2006, Atomic force microscopy and nanoindentation of cement pastes with nanotube dispersions, Phys. Status Solidi, 203, 1076, 10.1002/pssa.200566166 Tyson, 2011, Carbon nanotubes and carbon nanofibers for enhancing the mechanical properties of nanocomposite cementitious materials, J. Mater. Civ. Eng., 23, 1028, 10.1061/(ASCE)MT.1943-5533.0000266 Makar, 2005, Carbon nanotube/cement composites-early results and potential applications Makar, 2010, Growth of cement hydration products on single walled carbon nanotubes, J. Am. Ceram. Soc., 92, 1303, 10.1111/j.1551-2916.2009.03055.x Halperin, 1991, Relaxation and dynamical properties of water in partially filled porous materials using NMR techniques, J. Magn. Reson. Imag., 9, 733, 10.1016/0730-725X(91)90365-S Kowalczyk, 2014, The mechanism of water-isopropanol exchange in cement pastes evidenced by NMR relaxometry, RSC Adv., 4, 20709, 10.1039/C4RA00889H Jennings, 2008, Characterization and modeling of pores and surfaces in cement paste: correlations to processing and properties, J. Adv. Concr. Technol., 6, 5, 10.3151/jact.6.5 Aguayo, 2017, Porous inclusions as hosts for phase change materials in cementitious composites: characterization, thermal performance, and analytical models, Construct. Build. Mater., 134, 574, 10.1016/j.conbuildmat.2016.12.185 Zhao, 2014, Influence of pore structure on compressive strength of cement mortar, Sci. World J., 2014 Okeil, 2001, Short-term tensile strength of carbon fiber-reinforced polymer laminates for flexural strengthening of concrete girders, ACI Struct., 98, 470 Meng, 2018, Effect of graphite nanoplatelets and carbon nanofibers on rheology, hydration, shrinkage, mechanical properties, and microstructure of UHPC, Cement Concr. Res., 105, 64, 10.1016/j.cemconres.2018.01.001 Wang, 2019, Effect investigation of nanofillers on C-S-H gel structure with Si NMR, J. Mater. Civ. Eng., 31, 10.1061/(ASCE)MT.1943-5533.0002559 Wang, 2020, Mechanical properties of graphene-reinforced reactive powder concrete at different strain rates, J. Mater. Sci., 55, 3369, 10.1007/s10853-019-04246-5 Grassberger, 1983, Characterization of strange attractors, Phys. Rev. Lett., 50, 346, 10.1103/PhysRevLett.50.346 Li, 2015, Multifractal analysis of Hg pore size distributions of tectonically deformed coals, Int. J. Coal Geol., 138, 10.1016/j.coal.2015.04.011 Wang, 2001, A fractal study of the fracture surfaces of cement pastes and mortars using a stereoscopic SEM method, Cement Concr. Res., 31, 1385, 10.1016/S0008-8846(01)00591-9 Ji, 1997, Fractal model for simulating the space-filling process of cement hydrates and fractal dimensions of pore structure of cement-based materials, Cement Concr. Res., 27, 1691, 10.1016/S0008-8846(97)00157-9 Mena-Negrete, 2021, Micromechanical modeling of ultrasonic velocity for pore-structure and porosity characterization considering anisotropy in carbonate samples, Geofisc. Int., 60, 294 Liu, 2020, Study on micro structure and composition distribution of concrete surface zone based on fractal theory and XCT technology, Construct. Build. Mater., 263, 10.1016/j.conbuildmat.2020.120209 Zhao, 2018, Pore structure characterization of coal by synchrotron radiation nano-CT, Fuel, 215, 102, 10.1016/j.fuel.2017.11.014 Liu, 2018, Investigation of pore structure and mechanical property of cement paste subjected to the coupled action of freezing/thawing and calcium leaching, Cement Concr. Res., 109, 133, 10.1016/j.cemconres.2018.04.015 Tanaka, 2002, Development of technique for observing pores in hardened cement paste, Cement Concr. Res., 32, 1435, 10.1016/S0008-8846(02)00806-2 Ding, 2023, Self-sensing cementitious composites with hierarchical carbon fiber-carbon nanotube composite fillers for crack development monitoring of a maglev girder, Small, 19, 10.1002/smll.202206258 Ding, 2022, In-situ synthesizing carbon nanotubes on cement to develop self-sensing cementitious composites for smart high-speed rail infrastructures, Nano Today, 43, 10.1016/j.nantod.2022.101438 Wang, 2017, Measuring interlayer shear stress in bilayer graphene, Phys. Rev. Lett., 119 Zhu, 2010, Graphene and graphene oxide: synthesis, properties, and applications, Adv. Mater., 22, 3906, 10.1002/adma.201001068 Wang, 2022, Pore structure characteristics of concrete composites with surface-modified carbon nanotubes, Cement Concr. Compos., 128, 10.1016/j.cemconcomp.2022.104453 Aligizaki, 2005 Wu, 1991, Concrete durability syndrome and its prevention, Concrete, 4 Katz, 1987, Prediction of rock electrical conductivity from mercury injection measurements, J. Geophys. Res. Solid Earth, 92, 599, 10.1029/JB092iB01p00599 Paz-Ferreiro, 2010, Assessing soil particle-size distribution on experimental plots with similar texture under different management systems using multifractal parameters, Geoderma, 160, 47, 10.1016/j.geoderma.2010.02.002 Sun, 2020, Pore structure evolution mechanism of cement mortar containing diatomite subjected to freeze-thaw cycles by multifractal analysis, Cement Concr. Compos., 114, 10.1016/j.cemconcomp.2020.103731 Muller, 1996, Characterization of pore space in chalk by multifractal analysis, J. Hydrol., 187, 215, 10.1016/S0022-1694(96)03097-1 Lian, 2020, Clarification of a hypothesis on ‘centroplasm of cement-based composite’ proposed by Wu Zhongwei, J. Chin. Ceram. Soc., 48, 777 Bágel, 1997, Relationship between pore structure and permeability of hardened cement mortars: on the choice of effective pore structure parameter, Cement Concr. Res., 27, 1225, 10.1016/S0008-8846(97)00111-7 Katz, 1986, Quantitative prediction of permeability in porous rock, Phys. Rev. B, 34, 8179, 10.1103/PhysRevB.34.8179 Wei, 2004, Formation of low Ca/Si ratio C-S-H gel and its mechanism in controlling ASR in high performance cement, J. Nanjing Technol., 26, 98