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1.
Calcium hexa-aluminate (CaO·6Al2O3) has been prepared from calcium nitrate and aluminum sulfate solutions in the temperature range of 1000°–1400°C. A 0.3 mol/L solution of aluminum sulfate was prepared, and calcium nitrate was dissolved in it in a ratio that produced 6 mol of Al2(SO4)3·16H2O for each mole of Ca(NO3)2·4H2O. It was dried over a hot magnetic stirrer at ∼70°C and fired at 1000°–1400°C for 30–360 min. The phases formed were determined by XRD. It was observed that CaO·Al2O3 and CaO·2Al2O3 were also formed as reaction intermediates in the reaction mix of CaO·6Al2O3. The kinetics of the formation of CaO·6Al2O3 have been studied using the phase-boundary-controlled equation 1 − (1 − x )1/3= K log t and the Arrhenius plot. The activation energy for the low-temperature synthesis of CaO·6Al2O3 was 40 kJ/mol.  相似文献   

2.
Single-crystal X-ray and electron-diffraction studies show the existence in one polymorph of 4CaO.Al2O3. 13H2O of a hexagonal structural element with α= 5.74 a.u., c = 7.92 a. u. and atomic contents Ca2(OH)7- 3H2O. These structural elements are stacked in a complex way and there are probably two or more poly-types as in SiC or ZnS. Hydrocalumite is closely related to 4CaO.A12O3.13H2O, from which it is derived by substitution of CO32-for 20H-+ 3H2O once in every eight structural elements; similar substitutions explain the existence of compounds of the types 3CaO Al2O3.Ca Y 2- xH2O and 3CaO Al2O3 Ca Y xH2O. On dehydration, 4CaO.Al2O3.13H2O first loses molecular water and undergoes stacking changes and shrinkage along c. At 150° to 250°C., Ca(OH)2 and 4CaO.3Al2O3.3H2O are formed and, by 1000°C., CaO and 12CaO.7Al2O8. The dehydration of hydrocalumite follows a similar course, but no 4CaO.3Al2O3.3H2O is formed.  相似文献   

3.
Compatible phases in the system Li2O-Al2O3-TiO2 at various temperature levels were determined mainly by solid-state reactions for the portion of the ternary system bounded by Li2O Al2O2, Li2O.TiO2, Al2O, and TiO2. The existence of a ternary compound, Li2O.Al2O3.4TiO2, and nine joins was established. The ternary compound has a lower limit of stability at 1090°± 15°C. and dissociates and recombines rapidly at 1380°± 15°C.  相似文献   

4.
Polycrystalline Al2O3 was chemically vapor-deposited onto sintered Al2O3 substrates by reaction of AlCl3 with (1) H2O, (2) CO:H2, and (3) O2 at 1000° and 1500°C and 0.5 and 5.0 torr. Although the thermodynamics of all these reactions predict the formation of solid Al2O3, the deposition rate of the first reaction was considerably greater than that of the second. The third reaction was so slow that no measurable deposit was formed in 6 h at 1500°C. Formation of dense deposits of α-Al2O3 was favored by increasing temperature and decreasing pressure. Microstructural examination of the dense deposits showed long columnar grains, the largest of which extended through the deposit from the substrate to the surface.  相似文献   

5.
The 1600° and 1700°C. liquidus lines in the CaO·2Al2O3 and A12O3 stability fields of the system CaO-Al2O3-SiO2 are determined from the chemical analyses of saturated slags at these temperatures.  相似文献   

6.
The influence of citric acid on paste hydration of 3CaO· Al2O3 in the presence of CaSO4·2H2O and Ca(OH)2 was studied using X-ray diffraction, scanning electron microscopy, and conduction calorimetry. The time at which the citric acid is added (either prior to or with the mixing water) determines how it affects the reactivity of the aluminate. Immediately after the paste is gaged citric acid promotes a more rapid reaction, but later reactions are retarded. Hexagonal calcium aluminate hydrates, ettringite, and monosulfate were all detected as early hydration products. The influence of citric acid on the hydration of 3CaO·Al2O3 slabs immersed in saturated CaSO4·2H2O solutions was also studied and a reaction scheme proposed.  相似文献   

7.
The morphological changes accompanying the conversion of the hexagonal CaO·Al2O3·10H2O phase to the cubic 3CaO·Al2O3·6H2O phase were studied by scanning electron microscopy. The hydration and conversion reactions were monitored by X-ray diffraction analysis. From the micrographs, it was inferred that changes in the pore structure and the presence of large cubic crystals of questionable adhesive value were probably the principal factors responsible for the loss of strength in converted calcium aluminate cement pastes.  相似文献   

8.
The saturation surface of cassiterite, SnO2, was determined for liquids in the system K2O–Al2O3–SiO2 as a function of bulk composition and temperature. At fixed K2O/Al2O3 cassiterite solubility varies weakly with SiO2 concentration (76 to 84 mol%), temperature (1350° to 1550°C), and log ( f O2) (−0.7 to −5.3). Cassiterite solubility is also approximately independent of composition in liquids with molar ratios of K2O/Al2O3 lessthan equal to 1 (peraluminous liquids). As K2O/Al2O3 increases from 1 (peralkaline liquids), however, cassiterite solubility increases steeply and approximately linearly with K2O in excess of Al2O3. It is proposed that potassium in excess of aluminum combines with Sn4+ to form quasi-molecular complexes with an effective stoichiometry of K4SnO4.  相似文献   

9.
Phase relations in the system Na2O· Al2O3-CaO· Al2O3-Al2O3 at 1200°C in air were determined using the quenching method and high-temperature X-ray diffraction. The compound 2Na2O · 3CaO · 5Al2O3, known from the literature, was reformulated as Na2O · CaO · 2Al2O3. A new compound with the probable composition Na2O · 3CaO · 8Al2O3 was found. Cell parameters of both compounds were determined. The compound Na2O · CaO-2Al2O3 is tetragonal with a = 1.04348(24) and c = 0.72539(31) nm; it forms solid solutions with Na2O · Al2O3 up to 38 mol% Na2O at 1200°C. The compound Na2O · 3CaO · 8Al2O3 is hexagonal with) a = 0.98436(4) and c = 0.69415(4) nm. The compound CaO · 6Al2O3 is not initially formed from oxide components at 1200°C but behaves as an equilibrium phase when it is formed separately at higher temperatures. The very slow transformation kinetics between β and β "-Al2O3 make it very difficult to determine equilibrium phase relations in the high-Al2O3 part of the diagram. Conclusions as to lifetime processes in high-pressure sodium discharge lamps can be drawn from the phase diagram.  相似文献   

10.
Porous Al2O3/20 vol% LaPO4 and Al2O3/20 vol% CePO4 composites with very narrow pore-size distribution at around 200 nm have been successfully synthesized by reactive sintering at 1100°C for 2 h from RE2(CO3)3· x H2O (RE = La or Ce), Al(H2PO4)3 and Al2O3 with LiF additive. Similar to the previously reported UPC-3Ds (uniformly porous composites with a three-dimensional network structure, e.g. CaZrO3/MgO system), decomposed gases in the starting materials formed a homogeneous open porous structure with a porosity of ∼40%. X-ray diffraction, 31P magic-angle spinning nuclear magnetic resonance, scanning electron microscopy, and mercury porosimetry revealed the structure of the porous composites.  相似文献   

11.
Samarium ions (Sm2+) incorporated into aluminosilicate glasses by a sol-gel process showed persistent spectral hole burning at room temperature. Gels of the system Na2O-Al2O3SiO2 synthesized by the hydrolysis of Si(OC2H5)4, Al(OC4H9)3, CH3 COONa, and SmCl3·6H2O were heated in air at 500°C, then reacted with H2 gas to form Sm2+ ions. Whereas Al3+ ions effectively dispersed the Sm3+ ions in the glass structure, Na+ ions were not effective. The Al2O3-SiO2 glasses proved appropriate for reacting the Sm3+ ions with H2 gas and exhibited the intense photoluminescence of Sm2+ ions. The reaction of Sm3+ ions with H2 in the Al2O2-SiO2 glasses was determined by first-order kinetics, and the activation energy equaled 95 kJ/mol. At 800°C, the maximum photoluminescence of the Sm2+ ions was achieved within 20 min.  相似文献   

12.
Solid-state compatibility and melting relationships in the subsystem Al2O3—MgAl2O4—CaAl4O7 were studied by firing and quenching selected samples located in the isopletal section (CaO·MgO)—Al2O3. The samples then were examined using X-ray diffractomtery, optical microscopy, and scanning and transmission electron microscopies with wavelength- and energy-dispersive spectroscopies, respectively. The temperature, composition, and character of the ternary invariant points of the subsystem were established. The existence of two new ternary phases (Ca2Mg2Al28O46 and CaMg2Al16O27) was confirmed, and the composition, temperature, and peritectic character of their melting points were determined. The isothermal sections at 1650°, 1750°, and 1840°C of this subsystem were plotted, and the solid-solution ranges of CaAl4O7, CaAl12O19, MgAl2O4, Ca2Mg2Al28O46, and CaMg2Al16O27 were determined at various temperatures. The experimental data obtained in this investigation, those reported in Part I of this work, and those found in the literature were used to establish the projection of the liquidus surface of the ternary system Al2O3—MgO—CaO.  相似文献   

13.
Subsolidus phase relations in the system iron oride-Al2O2-Cr2O3 in air and at 1 atm. O2 pressure have been studied in the. temperature interval 1250° to 1500°C. At temperatures below 1318° C. only sesquioxides with hexagonal corundum structure are present as equilibrium phases. In the temperature interval 1318° to 1410°C. in air and 1318° to 1495° C. at 1 atm. O2, pressure the monoclinic phase Fe2O3. Al2O3 with some Cr2O3 in solid solution is present in the phase assemblage of certain mixtures. At temperatures above 1380°C. in air and above 1445°C. at 1 atm. O2 pressure a complex spinel solid solution is one of the phases present in appropriate composition areas of the system. X-ray data relating d- spacing to composition of solid solution phases are given.  相似文献   

14.
Strätlingite (2CaO·Al2O3·SiO2·8H2O) is a complex calcium aluminosilicate hydrate commonly associated with the hydration of slag-containing cements or other cements enriched in alumina. Strätlingite can coexist with the hydrogarnet solid solution [hydrogarnet (3CaO·Al2O3·6H2O)-katoite (3CaO·Al2O3·SiO2·4H2O)] and calcium silicate hydrate (C-S-H). Since Strätlingite is present in many blended cements, the knowledge of strätlingite's characteristic silicate anion structure and how aluminum is accommodated by the structure is important. Phase pure Strätlingite samples have been synthesized from oxides in the presence of excess water and from metakaolinite, calcium aluminate cement, CaO, NaOH, and water. The samples were characterized using X-ray diffraction (XRD), scanning electron microscopy (SEM), and thermogravimetric analysis (TGA) and then further examined using 29Si, with and without cross-polarization (CP), and 27Al solid-state magic angle nuclear magnetic resonance spectroscopy (MASNMR). For the most part, NMR data for these strätlingites corroborate structural information available in the literature. The aluminum atoms are both tetrahedrally and octahedrally coordinated, and the silicon atoms exist predominantly as Q2, Q2(1Al), and Q2(2Al) species. The presence of alkali affects the structure of strätlingite in subtle ways, significantly reducing the AlIV/A1VI ratio.  相似文献   

15.
A tentative phase diagram for the system Al203-Nd2O3 is presented. Three compounds were obtained: a β -A12O3-type compound, the perovskite NdAlO3, and Nd4Al2O9. The perovskite melts congruently (mp 2090°C), and the two other compounds exhibit incongruent melting behavior: β -Nd/Al2O3, mp 1900°C; Nd4Al2O9, mp 1905°C. Two eutectics exist with the following compositions and melting points: 80 mol% Al2O3, 1750°C; 23 mol% Al2O3,1800°C. Nd4Al2O9 decomposes in the solid state at 1780°C.  相似文献   

16.
Tentative phase relations in the binary system BnOa-A12O3 are presented as a prerequisite to the understanding of the system Li2O-B2O3-Al2O3. Two binary compounds, 2A12O3.B2O3 and 9A12O3.-2B2O3, melted incongruently at 1030° f 7°C and about 144°C, respectively. Two ternary compounds were isolated, 2Li2O.A12O3.B2O3 and 2Li2O. 2AI2O3. 3B203. The 2:1:1 compound gave a melting reaction by differential thermal analysis at 870°± 20° C, but the exact nature of the melting behavior was not determined. The 2:2:-3 compound melted at 790°± 20° C to LizO.-5Al2O3 and liquid. X-ray diffraction data for the compounds are presented and compatibility triangles are shown.  相似文献   

17.
Paste samples of tricalcium aluminate alone, with CaCl2, with gypsum, and with gypsum and CaCl2 were hydrated for up to 6 months and the hydration products characterized by SEM, XRD, and DTA. Tricalcium aluminate hydrated initially to a hexagonal hydroaluminate phase which then changed to the cubic form; the transformation rate depended on the size and shape of the sample and on temperature. The addition of CaCl2 to tricalcium aluminate resulted in the formation of 3CaO · Al2O3· CaCl2·10H2O and 4CaO · Al2O3· 13H2O, or a solid solution of the two. The chloride retarded the formation of the cubic phase 3CaO · Al2O3· 6H2O; the addition of gypsum resulted in the formation of monosulfoaluminate with a minor amount of ettringite. When chloride was added to tricalcium aluminate and gypsum, more ettringite was formed, although 3CaO · Al2O3· CaSO4· 12H2O and 3CaO · Al2O3· CaCl2· 10H2O were the main hydration products.  相似文献   

18.
The compound compositions of four aluminous cements were determined on anhydrous as well as hydrated specimens which had been heat-treated at temperatures between room temperature and 1400° C. Phases were identified by X-ray diffraction and differential thermal analysis. Specimens were also tested for transverse strength, dynamic modulus of elasticity, and thermal length change. A study of the dehydration characteristics of CaO - Al2O8 - 10H2O3 3CaO.Al2O3. 6H2O, and Al2O3. 3H2O was included. The data indicated that CaO. Al2O3 10H2O was the primary crystalline hydrate formed in the cements at room temperature. At 50° C., 3 CaO Al2O3-6H2O and Al2O3. 3H2O were formed as by-products of the dehydration of CaO.Al2O3.10H2O. When heated alone in an open system, CaO.Al2O3.10H2O did not convert to 3CaO. Al2O3. 6H2O and A12O3. 3H2O. A correlation between the mechanical properties and compound compositions was noted.  相似文献   

19.
Liquid hydration and water-vapor hydration of 3CaO·Al2O3, were studied. Variable parameters were hydration time, temperature, relative humidity, and amount of gypsum. The hydration products (gel, ettringite, hexagonal hydrates, and 3CaO·Al2O3·6H2O) were studied by electron microscopy, X-ray diffractometry, and thermal analysis. A reaction scheme is proposed. The degree of water-vapor hydration influenced the sequence of the subsequent liquid hydration which, however, was independent of the composition of the water-vapor hydration products. Below a critical degree of water-vapor hydration (≊3% combined water) the reaction with liquid water occurred as if no water-vapor hydration had taken place. Above this value the reaction gave hydration products suggesting a change of the 3CaO·Al2O3 reactivity. A possible correlation with the retardation of strength development of prehydrated cement is suggested.  相似文献   

20.
The system MgO–Al2O3–2CaO·SiO2 comprises a plane through the tetrahedron CaO–MgO–Al2O3–SiO2. A total of 108 compositions were prepared having an alumina content below the line joining 2CaO·Al2O3SiO2 (gehlenite) and MgO·Al2O3 (spinel). Quenching experiments were carried out on 96 of these compositions at temperatures up to 1590°C. Three binary eutectic systems and two ternary eutectic systems are described. Compositions on this plane are of significance in an investigation of the constitution of basic refractory clinkers made from Canadian dolomitic magnesites. They also concern the compositions of certain blast furnace slags.  相似文献   

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