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首页> 外文期刊>Journal of Physical and Chemical Reference Data >Reference Correlations of the Thermal Conductivity of Cyclopentane, iso-Pentane, and n-Pentane
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Reference Correlations of the Thermal Conductivity of Cyclopentane, iso-Pentane, and n-Pentane

机译:环戊烷,异戊烷和正戊烷导热系数的参考相关性

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摘要

New, wide-range reference equations for the thermal conductivity of cyclopentane, iso-pentane, and n-pentane are presented. The equations are based in part upon a body of experimental data that has been critically assessed for internal consistency and for agreement with theory whenever possible. In the case of the dilute-gas thermal conductivity, a theoretically based correlation was adopted in order to extend the temperature range of the experimental data. In the critical region, the enhancement of the thermal conductivity is well represented by theoretically based equations containing just one adjustable parameter, estimated by a predictive scheme. The thermal-conductivity equations behave in a physically reasonable manner over a wide range of conditions that correspond to the range of validity of the most accurate equations of state for each fluid. The estimated uncertainties of the correlations are dependent on the availability of accurate experimental data for validation, and are different for each fluid, varying from 1% (at the 95% confidence level) for the liquid phase of iso-pentane over the temperature range 307 K < T < 355 K at pressures up to 400 MPa (where high-accuracy data are available) to a more typical 4% for the liquid phase of cyclopentane over the temperature range 218 K < T < 240 K at pressures to 250 MPa. Estimated uncertainties in the gas phase are typically on the order of 3%-5%. For all three fluids, uncertainties in the critical region are much larger, since the thermal conductivity approaches infinity at the critical point and is very sensitive to small changes in density. (C) 2015 by the U.S. Secretary of Commerce on behalf of the United States. All rights reserved.
机译:提出了有关环戊烷,异戊烷和正戊烷导热系数的宽范围新参考方程式。这些方程式部分基于大量实验数据,这些数据已被严格评估以确保内部一致性并在可能的情况下与理论保持一致。在稀气体导热系数的情况下,采用基于理论的相关性以扩展实验数据的温度范围。在临界区域,导热系数的增强可以通过理论上的方程式很好地表示,该方程式仅包含一个可预测的参数,并通过预测方案进行估算。导热系数方程在物理上合理的方式在宽范围的条件下运行,该条件对应于每种流体的最精确状态方程的有效性范围。相关性的估计不确定性取决于用于验证的准确实验数据的可用性,并且对于每种流体而言都不同,在温度范围内,异戊烷的液相为1%(在95%置信水平下)变化在最高压力为400 MPa(可获得高精度数据)的情况下,K

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