Methodologies for measuring the degree of reaction in Portland cement blends with supplementary cementitious materials by 29Si and 27A1 MAS NMR spectroscopy
暂无分享,去创建一个
[1] Edward J. Garboczi,et al. Estimation of the degree of hydration of blended cement pastes by a scanning electron microscope point-counting procedure , 2004 .
[2] H. Mayer. Die Kristallstruktur von Si5O[PO4]6 , 1974 .
[3] S. M. Ramírez,et al. Characterization and pozzolanicity of zeolitic rocks from two Cuban deposits , 2006 .
[4] K. Takehira,et al. Mechanism of reconstitution of hydrotalcite leading to eggshell-type Ni loading on MgAl mixed oxide , 2005 .
[5] L. Frydman,et al. Isotropic Spectra of Half-Integer Quadrupolar Spins from Bidimensional Magic-Angle Spinning NMR , 1995 .
[6] S. Hartmann,et al. Nuclear Spin-Lattice Relaxation Via Paramagnetic Centers Without Spin Diffusion , 1968 .
[7] G. W. Groves,et al. Transmission Electron Microscopy and Microanalytical Studies of Ion-Beam-Thinned Sections of Tricalcium Silicate Paste , 1986 .
[8] H. C. Erntroy. The determination of clinker content of composite cements , 1987 .
[9] J. Stebbins. NMR evidence for five-coordinated silicon in a silicate glass at atmospheric pressure , 1991, Nature.
[10] C. Dobson,et al. Location of Aluminum in Substituted Calcium Silicate Hydrate (C‐S‐H) Gels as Determined by 29Si and 27Al NMR and EELS , 1993 .
[11] P. L. Pratt,et al. BACKSCATTERED ELECTRON IMAGES OF POLISHED CEMENT SECTIONS IN THE SCANNING ELECTRON MICROSCOPE , 1984 .
[12] É. Lippmaa,et al. High-resolution solid-state 29Si NMR of polymorphs of Ca2SiO4 , 1985 .
[13] É. Lippmaa,et al. Structural studies of silicates by solid-state high-resolution silicon-29 NMR , 1980 .
[14] K. Scrivener,et al. Effects of an early or a late heat treatment on the microstructure and composition of inner C-S-H products of Portland cement mortars , 2002 .
[15] J. G. Cabrera,et al. The nature of CSH in model slag-cements , 2000 .
[16] P. Colombet,et al. Nuclear magnetic resonance spectroscopy of cement-based materials , 1998 .
[17] Jørgen Skibsted,et al. Hydration of Portland cement in the presence of clay minerals studied by 29Si and 27Al MAS NMR spectroscopy , 2003 .
[18] H. J. Jakobsen,et al. Characterization of calcium aluminate phases in cements by aluminum-27 MAS NMR spectroscopy , 1993 .
[19] K. Scrivener. The Microstructure of Anhydrous Cement and its Effect on Hydration , 1986 .
[20] J. Klinowski. Nuclear magnetic resonance studies of zeolites , 1984 .
[21] M. G. Stevens,et al. Use of DTA to determine the effect of mineralizers on the cement-quartz hydrothermal reactions. Part 2. Clay addition , 1995 .
[22] D. Michel,et al. High-resolution solid-state NMR of silicates and zeolites , 1987 .
[23] K. Luke,et al. Internal chemical evolution of the constitution of blended cements , 1988 .
[24] Steven O. Smith,et al. Variable-Amplitude Cross-Polarization MAS NMR , 1993 .
[25] Karen L. Scrivener,et al. Backscattered electron imaging of cementitious microstructures: Understanding and quantification , 2004 .
[26] Donald H. Campbell,et al. Microscopical examination and interpretation of portland cement and clinker , 1999 .
[27] L. Struble. The effect of water on maleic acid and salicylic acid extractions , 1985 .
[28] W. Wieker,et al. Hochauflösende 29Si-NMR an festen Silicaten: Anisotropie der chemischen Verschiebung im Thaumasit , 1980 .
[29] J. Mitchell,et al. Surface relaxation and chemical exchange in hydrating cement pastes: a two-dimensional NMR relaxation study. , 2005, Physical review. E, Statistical, nonlinear, and soft matter physics.
[30] R. Kirkpatrick. Chapter 9. MAS NMR SPECTROSCOPY OF MINERALS AND GLASSES , 1988 .
[31] W. A. Gutteridge. On the dissolution of the interstitial phases in Portland cement , 1979 .
[32] M. Ward,et al. Effect of silica fume and fly ash on heat of hydration of Portland cement , 2002 .
[33] Vanessa Kocaba,et al. Development and evaluation of methods to follow microstructural development of cementitious systems including slags , 2009 .
[34] I. Richardson,et al. Composition, morphology and nanostructure of C-S-H in white portland cement pastes hydrated at 55 °C , 2007 .
[35] A. Pines,et al. Proton‐Enhanced Nuclear Induction Spectroscopy. A Method for High Resolution NMR of Dilute Spins in Solids , 1972 .
[36] E. Oldfield,et al. High resolution solid-state sodium-23, aluminum-27, and silicon-29 nuclear magnetic resonance spectroscopic reconnaissance of alkali and plagioclase feldspars , 1985 .
[37] I. Richardson,et al. The structure of the calcium silicate hydrate phases present in hardened pastes of white Portland cement/blast-furnace slag blends , 1997 .
[38] R. Goguel. A New Consecutive Dissolution Method for the Analysis of Slag Cements , 1995 .
[39] C. Dobson,et al. Hydration of Tricalcium Silicate Followed by 29Si NMR with Cross‐Polarization , 1988 .
[40] M. Hansen,et al. 29Si chemical shift anisotropies in calcium silicates from high-field 29Si MAS NMR spectroscopy. , 2003, Inorganic chemistry.
[41] P. Whitfield,et al. Quantitative Rietveld analysis of the amorphous content in cements and clinkers , 2003 .
[42] H. J. Jakobsen,et al. Quantification of thaumasite in cementitious materials by 29 Si { 1 H} cross-polarization magic-angle spinning NMR spectroscopy , 1995 .
[43] E. Tazawa,et al. Chemical shrinkage and autogenous shrinkage of hydrating cement paste , 1995 .
[44] H. J. Jakobsen,et al. A new aluminium-hydrate species in hydrated Portland cements characterized by 27Al and 29Si MAS NMR spectroscopy , 2006 .
[45] John H. Sharp,et al. The chemical composition and microstructure of hydration products in blended cements , 2004 .
[46] M. Enders. Quantitative phase analysis , 2007 .
[47] T. Knudsen,et al. Obtaining hydration data by measurement of chemical shrinkage with an archimeter , 1985 .
[48] G. W. Groves,et al. The hydration of C3S and ordinary Portland cement with relatively large additions of microsilica , 1989 .
[49] G. Lawes,et al. Scanning Electron Microscopy and X-Ray Microanalysis , 1987 .
[50] Geert De Schutter,et al. Hydration and temperature development of concrete made with blast-furnace slag cement. , 1999 .
[51] J. S. Hartman,et al. Silicon-29 MAS NMR of the aluminosilicate mineral kyanite: residual dipolar coupling to aluminum-27 and nonexponential spin-lattice relaxation , 1991 .
[52] C. Poon,et al. Degree of hydration and gel/space ratio of high-volume fly ash/cement systems , 2000 .
[53] L. Frydman,et al. Multiple-Quantum Magic-Angle Spinning NMR: A New Method for the Study of Quadrupolar Nuclei in Solids , 1995 .
[54] H. J. Jakobsen,et al. Characterization of white Portland cement hydration and the C-S-H structure in the presence of sodium aluminate by 27Al and 29Si MAS NMR spectroscopy , 2004 .
[55] E. Hahn,et al. Nuclear Double Resonance in the Rotating Frame , 1962 .
[56] C. Ftikos,et al. DTA-TG study on the Ca(OH)2 - pozzolan reaction in cement pastes hydrated up to three years , 1983 .
[57] H. J. Jakobsen,et al. High-speed spinning versus high magnetic field in MAS NMR of quadrupolar nuclei. 27Al MAS NMR of 3CaO·Al2O3 , 1991 .
[58] P. Colombet,et al. Application of NMR spectroscopy to cement science , 1994 .
[59] H. Zanni,et al. Aluminum Incorporation in Calcium Silicate Hydrates (C−S−H) Depending on Their Ca/Si Ratio , 1999 .
[60] J. Escalante,et al. Reactivity of blast-furnace slag in Portland cement blends hydrated under different conditions , 2001 .
[61] Ryan S. Winburn,et al. Rietveld quantitative X-ray diffraction analysis of NIST fly ash standard reference materials , 2000, Powder Diffraction.
[62] I. Richardson. The nature of the hydration products in hardened cement pastes , 2000 .
[63] J. Herzfeld,et al. Sideband intensities in NMR spectra of samples spinning at the magic angle , 1980 .
[64] R. Bogue,et al. Calculation of the Compounds in Portland Cement , 1929 .
[65] R. Feldman,et al. Studies on mechanics of development of physical and mechanical properties of high-volume fly ash-cement pastes , 1990 .
[66] G. Engelhardt. Silicon‐29 NMR of Solid Silicates , 2007 .
[67] H. Taylor. Modification of the Bogue calculation , 1989 .
[68] P. L. Pratt,et al. Morphological Development of Hydrating Tricalcium Silicate as Examined by Electron Microscopy Techniques , 1981 .
[69] K. Scrivener,et al. Quantitative study of Portland cement hydration by X-ray diffraction/rietveld analysis and independent methods , 2004 .
[70] P. McDonald,et al. Microstructure and texture of hydrated cement-based materials: A proton field cycling relaxometry approach , 2007 .
[71] É. Lippmaa,et al. Solid-state high-resolution silicon-29 chemical shifts in silicates , 1984 .
[72] W. Geßner,et al. Determination of the aluminium coordination in aluminium-oxygen compounds by solid-state high-resolution 27AI NMR , 1981 .
[73] Nuclear magnetic resonance detection of the nuclear spins near paramagnetic impurities in solids , 2002 .
[74] Sifeng Liu,et al. Study on the hydration heat of binder paste in high-performance concrete , 2002 .
[75] David Darwin,et al. Quantitative backscattered electron analysis of cement paste , 1992 .
[76] C. Dobson,et al. The characterization of hardened alkali-activated blast-furnace slag pastes and the nature of the calcium silicate hydrate (C-S-H) phase , 1994 .
[77] G. Pake. Nuclear Resonance Absorption in Hydrated Crystals: Fine Structure of the Proton Line , 1948 .
[78] I. Odler,et al. Investigation of the hydration of Portland blastfurnace slag cement: hydration kinetics , 1989 .
[79] Will Hansen,et al. Investigation of blended cement hydration by isothermal calorimetry and thermal analysis , 2005 .
[80] I. Smalley,et al. A simple thermogravimetric study of hydrated cement , 1985 .
[81] R. Blinc,et al. NMR Relaxation Study of Adsorbed Water in Cement and C3S Pastes , 1978 .
[82] É. Lippmaa,et al. A high resolution 29Si NMR study of the hydration of tricalciumsilicate , 1982 .
[83] É. Lippmaa,et al. High-resolution NMR of quadrupolar nuclei in rotating solids , 1981 .
[84] Paul E. Stutzman,et al. Scanning electron microscopy imaging of hydraulic cement microstructure , 2004 .
[85] N. Nielsen,et al. Satellite transitions in MAS NMR spectra of quadrupolar nuclei , 1991 .
[86] C. Hall,et al. Characterization of Cement Minerals, Cements and Their Reaction Products at the Atomic and Nano Scale , 2008 .
[87] I. R. Peat,et al. The experimental approach to accurate carbon-13 spin-lattice relaxation measurements , 1975 .