Apparent molar heat capacities of aqueous solutions of LiBO2, NaBO2, KBO2, Na2B4O7 and K2B4O7 at T = (298.12, 313.13 and 328.14) K using a Picker flow calorimeter
暂无分享,去创建一个
[1] D. Zeng,et al. Measurement of Specific Heat Capacity of NaBO2(aq) Solution and Thermodynamic Modeling of NaBO2 + H2O, NaBO2 + NaCl + H2O, and NaBO2 + Na2SO4 + H2O Systems , 2020 .
[2] E. Lemmon,et al. YOU MAY BE INTERESTED IN The IAPWS Formulation 1995 for the Thermodynamic Properties of Ordinary Water Substance for General and Scientific Use , 2018 .
[3] D. Zeng,et al. Phase diagrams and thermochemical modeling of salt lake brine systems. II. NaCl+H2O, KCl+H2O, MgCl2+H2O and CaCl2+H2O systems , 2016 .
[4] D. Zeng,et al. Phase diagrams and thermochemical modeling of salt lake brine systems. I. LiCl+H2O system , 2015 .
[5] Fangyong Yan,et al. Density, Electrical Conductivity, Acidity, Viscosity and Raman Spectra of Aqueous NaBO2, Na2B4O7 and NaB5O8 Solutions at 298.15 and 323.15K , 2013 .
[6] J. Kosinski,et al. Thermodynamic modeling of boric acid and selected metal borate systems , 2013 .
[7] J. Krakowiak. Densimetric and ultrasonic characterization of pentaerythritol in water and in aqueous NaCl and MgCl2 solutions at different temperatures , 2012 .
[8] V. Hynek,et al. A new version of differential flow heat capacity calorimeter; tests of heat loss corrections and heat capacities of aqueous NaCl from T = 300 K to T = 623 K , 2002 .
[9] E. Oelkers,et al. Calculation of the thermodynamic properties of aqueous species at high pressures and temperatures. Effective electrostatic radii, dissociation constants and standard partial molal properties to 1000 °C and 5 kbar , 1992 .
[10] R. W. Carter,et al. Calibration and sample-measurement techniques for flow heat-capacity calorimeters , 1991 .
[11] D. G. Archer,et al. The Dielectric Constant of Water and Debye‐Hückel Limiting Law Slopes , 1990 .
[12] C. Duffy,et al. Comparison of calibration methods for flow heat-capacity calorimeters and heat capacities of concentrated NaCl(aq) to 598 K , 1989 .
[13] E. Matteoli,et al. Apparent molar heat capacity and relative enthalpy of aqueous NaOH between 323 and 523K , 1988 .
[14] John H. Weare,et al. The prediction of borate mineral equilibria in natural waters: Application to Searles Lake, California , 1986 .
[15] S. Murakami,et al. Flow microcalorimeter for heat capacities of solutions , 1985 .
[16] E. Clarke,et al. Evaluation of the Thermodynamic Functions for Aqueous Sodium Chloride from Equilibrium and Calorimetric Measurements below 154 °C , 1985 .
[17] H. Helgeson,et al. Theoretical prediction of the thermodynamic behavior of aqueous electrolytes by high pressures and temperatures; IV, Calculation of activity coefficients, osmotic coefficients, and apparent molal and standard and relative partial molal properties to 600 degrees C and 5kb , 1981 .
[18] M. Simard,et al. Heat capacity measurements of liquids with a Picker mixing flow microcalorimeter , 1981 .
[19] R. Wood,et al. Heat capacity of aqueous sodium chloride from 320 to 600 K measured with a new flow calorimeter , 1981 .
[20] Kenneth S. Pitzer,et al. High-temperature thermodynamic properties of aqueous sodium sulfate solutions , 1981 .
[21] E. M. Woolley,et al. Heat capacities of aqueous HCI, NaOH, and NaCl at 283.15, 298.15 and 313.15 K: ΔC°p for ionization of water , 1981 .
[22] J. E. Tanner,et al. Specific heats of aqueous solutions of NaCl, NaBr, and KCl: Comparisons with related thermal properties , 1978 .
[23] J. Fortier,et al. Heat capacities of some organic liquids determined with the Picker flow calorimeter , 1976 .
[24] J. Desnoyers,et al. Heat capacity of solutions by flow microcalorimetry , 1971 .