The use of electrical impedance spectroscopy for monitoring the hydration products of Portland cement mortars with high percentage of pozzolans
暂无分享,去创建一个
Jordi Payá | María Victoria Borrachero | Inmaculada Concepción Fita | L. Soriano | J. Payá | José María Cruz | Lourdes Soriano | M. Borrachero | I. Fita | J. M. Cruz
[1] J. Monzó,et al. Mechanical treatments of fly ashes. Part III: Studies on strength development of ground fly ashes (GFA) — Cement mortars , 1997 .
[2] A. Meskauskas,et al. Conductivity of nanostructured mesoporous MCM-41 molecular sieve materials , 2006 .
[3] Mehmet Gesoǧlu,et al. Improving strength, drying shrinkage, and pore structure of concrete using metakaolin , 2008 .
[4] D. Sinclair,et al. Development of an Equivalent Circuit Model for Cement Pastes from Microstructural Considerations , 1997 .
[5] Darryl P Almond,et al. The dielectric properties of random R - C networks as an explanation of the `universal' power law dielectric response of solids , 1999 .
[6] G. Kakali,et al. Thermal treatment of kaolin : the effect of mineralogy on the pozzolanic activity , 2001 .
[7] R. Crooks,et al. Transient effects on microchannel electrokinetic filtering with an ion-permselective membrane. , 2008, Analytical chemistry.
[8] J. Ross Macdonald,et al. Comparison of Parametric and Nonparametric Methods for the Analysis and Inversion of Immittance Data , 2000 .
[9] V. M. Malhotra,et al. Pozzolanic and cementitious materials , 1996 .
[10] Sidney Diamond,et al. Mercury porosimetry: An inappropriate method for the measurement of pore size distributions in cement-based materials , 2000 .
[11] A. Xu,et al. Effect of fly ash on the microstructure of cement mortar , 1993 .
[12] S. Wild,et al. Sulphate Resistance of Metakaolin Mortar , 1998 .
[13] Y. Elakneswaran,et al. Ion-cement hydrate interactions govern multi-ionic transport model for cementitious materials , 2010 .
[14] P. K. Mehta. HIGH PERFORMANCE, HIGH-VOLUME FLY ASH CONCRETE FOR SUSTAINABLE DEVELOPMENT , 2004 .
[15] C. Poon,et al. Degree of hydration and gel/space ratio of high-volume fly ash/cement systems , 2000 .
[16] R. Talero. Performance of metakaolin and portland cements in ettringite formation as determined by ASTM C 452-68 : Kinetic and morphological differences , 2005 .
[17] Maria C.G. Juenger,et al. The use of nitrogen adsorption to assess the microstructure of cement paste , 2001 .
[18] N. Feng,et al. Fractal model for simulating the space-filling process of cement hydrates and fractal dimensions of pore structure of cement-based materials , 1997 .
[19] C. Bowen,et al. Modelling Power Law Dependencies of Frequency Dependent AC Conductivity and Permittivity of Conductor-Relaxor Composites , 2008 .
[20] Kenneth A. Snyder,et al. Suspended hydration and loss of freezable water in cement pastes exposed to 90% relative humidity , 2004 .
[21] Caijun Shi,et al. Studies on several factors affecting hydration and properties of lime-pozzolan cements , 2001 .
[22] R. Hill,et al. The dielectric response of hydrating porous cement paste , 1996 .
[23] J. Bai,et al. Metakaolin and calcined clays as pozzolans for concrete: a review , 2001 .
[24] Lars-Olof Nilsson,et al. Dielectric properties of cement mortar as a function of water content , 1992 .
[25] X. Nóvoa,et al. Impedance spectroscopy study of saturated mortar samples , 2008 .
[26] F. Ivanauskas,et al. Electrochemical impedance spectroscopy of tethered bilayer membranes. , 2012, Langmuir : the ACS journal of surfaces and colloids.
[27] Kefei Li,et al. Pore structure characterization of cement pastes blended with high-volume fly-ash , 2012 .
[28] R. Siddique,et al. Influence of metakaolin on the properties of mortar and concrete: A review , 2009 .
[29] Xiaosheng Wei,et al. Study on hydration of Portland cement with fly ash using electrical measurement , 2005 .
[30] William John McCarter,et al. Electrical conductivity, diffusion, and permeability of Portland cement-based mortars , 2000 .
[31] A. Nonat,et al. Hydration of cementitious materials, present and future , 2011 .
[32] S. Wansom,et al. Characterizing pozzolanic activity of rice husk ash by impedance spectroscopy , 2010 .
[33] R. Hooton,et al. Using pore parameters to estimate permeability or conductivity of concrete , 2007 .
[34] Michel Vauclin,et al. Theoretical evidence for `Lichtenecker's mixture formulae' based on the effective medium theory , 1998 .
[35] Isidro Sánchez,et al. Impedance spectroscopy study of hardened Portland cement paste , 2002 .
[36] S. Tsivilis,et al. The effect of metakaolin on the corrosion behavior of cement mortars , 2005 .
[37] X. Nóvoa,et al. Impedance spectroscopy to characterize the pore structure during the hardening process of Portland cement paste , 2006 .
[38] J. Payá,et al. Evaluación de las propiedades eléctricas de morteros de cemento con puzolanas , 2011 .
[39] E. E. Berry,et al. Mechanisms of hydration reactions in high volume fly ash pastes and mortars , 1990 .
[40] V. Papadakis. Effect of fly ash on Portland cement systems. Part II. High-calcium fly ash , 1999 .
[41] F. Massazza,et al. 10 – Pozzolana and Pozzolanic Cements , 1998 .
[42] P. Aitcin. High Performance Concrete , 1998 .
[43] Erick Ringot,et al. Efficiency of mineral admixtures in mortars: Quantification of the physical and chemical effects of fine admixtures in relation with compressive strength , 2006 .
[44] Dubravka Bjegović,et al. Role of mineral additions in reducing CO2 emission , 2005 .
[45] J. Macdonald,et al. Utility of continuum diffusion models for analyzing mobile-ion immittance data: electrode polarization, bulk, and generation–recombination effects , 2010, Journal of physics. Condensed matter : an Institute of Physics journal.
[46] Jordi Payá,et al. Evaluation of the pozzolanic activity of fluid catalytic cracking catalyst residue (FC3R). Thermogravimetric analysis studies on FC3R-Portland cement pastes , 2003 .
[47] D. Bentz. Three-Dimensional Computer Simulation of Portland Cement Hydration and Microstructure Development , 1997 .
[48] A. Katz,et al. Prediction of rock electrical conductivity from mercury injection measurements , 1987 .