研究目的
To demonstrate the applicability of surface light scattering (SLS) for the simultaneous measurement of interfacial tensions and viscosities in multiphase systems in macroscopic thermodynamic equilibrium.
研究成果
The study demonstrated that surface light scattering (SLS) is a suitable method for the reliable determination of interfacial tensions and viscosities in multiphase systems at macroscopic thermodynamic equilibrium. The method provided absolute data for the dynamic viscosities of the two liquid phases and the interfacial tensions between them with total measurement uncertainties down to about 2%. The results showed that the viscosities of the two liquid phases approach each other and the liquid-liquid interfacial tension tends to zero near the upper critical solution temperature.
研究不足
The study is limited to two model systems (n-decane/methanol and n-dodecane/methanol) at temperatures between 333 and 358 K. The method requires flat phase boundaries and careful alignment to avoid line broadening effects.
1:Experimental Design and Method Selection:
The study utilized surface light scattering (SLS) to measure interfacial tensions and viscosities in multiphase systems. The method is based on the analysis of scattered light from surface fluctuations at phase boundaries.
2:Sample Selection and Data Sources:
Two model systems consisting of n-decane and methanol as well as n-dodecane and methanol were studied. These systems form a vapor-liquid-liquid equilibrium at atmospheric pressure.
3:List of Experimental Equipment and Materials:
A frequency-doubled continuous-wave Nd:YVO4-laser was used as a light source. The scattered light was analyzed using photon correlation spectroscopy.
4:Experimental Procedures and Operational Workflow:
The laser was irradiated onto the vapor-liquid and liquid-liquid phase boundaries, and the scattered light was analyzed to determine the dynamics of surface fluctuations.
5:Data Analysis Methods:
The dynamics of the surface fluctuations were analyzed using the dispersion relation for hydrodynamic surface fluctuations to determine viscosities and interfacial tensions.
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