Experimental Study of the Effect of Temperature, Pressure and Concentration on the Viscosity of Aqueous NaBr Solutions

被引:0
作者
Ilmutdin M. Abdulagatov
Nazim D. Azizov
机构
[1] Institute for Geothermal Problems of the Dagestan Scientific Center of the Russian Academy of Sciences,Physical and Chemical Properties Division
[2] Makhachkala,undefined
[3] National Institute of Standards and Technology,undefined
[4] Azerbaijan State Oil Academy,undefined
来源
Journal of Solution Chemistry | 2006年 / 35卷
关键词
aqueous solution; -coefficient; capillary viscometer; sodium bromide; viscosity; water;
D O I
暂无
中图分类号
学科分类号
摘要
The viscosity of 10 (0.049, 0.205, 0.464, 0.564, 0.820, 1.105, 1.496, 2.007, 2.382, and 2.961 mol ċ kg−1) binary aqueous NaBr solutions has been measured with a capillary-flow technique. Measurements were made at pressures up to 40 MPa. The range of temperature was 288–595 K. The total uncertainty of viscosity, pressure, temperature and composition measurements were estimated to be less than 1.6%, 0.05%, 15 mK, and 0.02%, respectively. The effect of temperature, pressure, and concentration on viscosity of binary aqueous NaBr solutions were studied. The measured values of the viscosity of NaBr(aq) were compared with data, predictions and correlations reported in the literature. The temperature and pressure coefficients of viscosity of NaBr(aq) were studied as a function of concentration and temperature. The viscosity data have been interpreted in terms of the extended Jones–Dole equation for the relative viscosity (η/η0) to calculate accurately the values of viscosity A- and B-coefficients as a function of temperature. The derived values of the viscosity A- and B-coefficients were compared with the results predicted by the Falkenhagen–Dole theory of electrolyte solutions and calculated with the ionic B-coefficient data. The physical meaning parameters V and E in the absolute rate theory of the viscosity and hydrodynamic molar volume Vk were calculated using the present experimental viscosity data. The TTG model has been used to compare predicted values of the viscosity of NaBr(aq) solutions with experimental values at high pressures.
引用
收藏
页码:705 / 738
页数:33
相关论文
共 148 条
  • [11] Cardoso J.E. de M.(1996)Prediction of Viscosity of Mixed Electrolyte Solutions Based on the Eyring’s Absolute Rate Theory and the Equations of Patwardhan and Kumar Izv. Visch. Ucheb. Zaved., Neft’i Gaz. 3/4 45-undefined
  • [12] Barcia O.E.(1985)Viscosity of Aqueous NaBr Solutions Rikagaku Kenkyusho Hokoku 61 53-undefined
  • [13] Jenkins H.D.B.(1980)Densities, Viscosities, and Electrolytic Conductivities of Concentrated Aqueous Solutions of 31 Solutes in the Temperature Range 15–55 ∘ and Empirical Equations for the Relative Viscosity Rikagaku Kenkyusho Hokoku 56 103-undefined
  • [14] Marcus Y.(1984)Measurement of Density, Viscosity and Electrolytic Conductivity of Concentrated Electrolyte Solutions. I. LiCl, NaCl, KCl, RbCl, CsCl, MgSO J. Chem. Eng. Data 29 45-undefined
  • [15] Falkenhagen H.(2002) and NiSO J. Mol. Liquids 100 265-undefined
  • [16] Dole M.(1978)Density, Viscosity, and Electrolyte Conductivity of Concentrated Aqueous Electrolyte Solutions at Several Temperatures. Alkaline-Earth Chlorides, LaCl Can. J. Chem.-Rev. Can. Chim. 56 1442-undefined
  • [17] Lencka M.M.(1977), Na Can, J. Chem.-Rev. Can. Chim. 55 1062-undefined
  • [18] Anderko A.(1961)SO Bull. Chem. Soc. Jpn. 34 1260-undefined
  • [19] Sanders S.J.(1977), NaNO J. Chem. Eng. Data 22 427-undefined
  • [20] Young R.D.(1979), NaBr, KNO J. Solution Chem. 8 853-undefined