Kinematic Viscosity and Surface Tension of R134a Refrigerant-Oil Mixtures in Saturated Liquid Phase from 273.15 K to 293.15 K
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Kinematic Viscosity and Surface Tension of R134a Refrigerant-Oil Mixtures in Saturated Liquid Phase from 273.15 K to 293.15 K
Vol. 42, Issue 9, Pages: 1065-1069(2008)
作者机构:
西安交通大学动力工程多相流国家重点实验室,西安,710049
作者简介:
基金信息:
DOI:
CLC:TB61;TK121
Online First:10 September 2008,
Published:2008
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Kinematic Viscosity and Surface Tension of R134a Refrigerant-Oil Mixtures in Saturated Liquid Phase from 273.15 K to 293.15 K[J]. 2008, 42(9): 1065-1069.
DOI:
Kinematic Viscosity and Surface Tension of R134a Refrigerant-Oil Mixtures in Saturated Liquid Phase from 273.15 K to 293.15 K[J]. 2008, 42(9): 1065-1069.DOI:
Kinematic Viscosity and Surface Tension of R134a Refrigerant-Oil Mixtures in Saturated Liquid Phase from 273.15 K to 293.15 K
The kinematic viscosity and the surface tension of R134a and oil mixtures in saturated liquid phase from 273.15 K to 293.15 K are measured
the brand of the lubricant is Solest120 and its mass fractions are 20×10
-6
50×10
-6
80×10
-6
and 100×10
-6
respectively. These experimental results indicate that at the same temperature
with the increase in mass fraction of lubricant
the kinematic viscosity and the surface tension of R134a refrigerant-oil mixtures in saturated liquid phase are enhanced significantly
the impact of lubrication on kinematic viscosity gradually decreases with the rising temperature
and the impact of lubrication on surface tension gradually increases with the rising temperature. According to the experimental results
the principle of nonlinear regression is chosen to construct the relational expressions describing the relation between the kinematic viscosity
the surface tension and variation of temperature and mass fraction of lubricant
and their absolute averages of relative deviations reach to respectively 2.22% and 0.43% compared with the experimental results.
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references
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