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EXPERIMENTAL APPROACHES FOR THE STUDY AND APPLICATION OF SUPERCRITICAL FLUIDS

机译:超临界流体研究与应用的实验方法

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The design of any process involving supercritical fluids requires some degree of knowledge about the thermophysical and chemical properties of the solvents, solutes, and of the solvent + solute mixture. This knowledge can take the form of measured data, models based on measured data, or predictions. Clearly, the most costly approach is to obtain measured data for each property of interest, and the least accurate is to use predictions throughout. The best compromise is therefore the use of physical and engineering models that are based on measured properties that have a known and acceptable uncertainty. In this review, we cover the experimental aspects of the data required for process design with supercritical fluids. For clarity, the measurement techniques are divided between properties of pure components (solvents and solutes) and properties of mixtures. For pure components, we begin with the solvents, and discuss the fundamental P-V-T surface of a fluid, and then consider viscosity and thermal conductivity, solvent interaction properties, and finally, chemical stability. For the pure solutes, we discuss the solute vapor pressure and chemical stability. Then, the properties of supercritical fluid mixtures (solvent + solute) are discussed. Here, considerable time is devoted to the measurement of solute solubility. We also discuss aspects of solute diffusion and vapor/liquid equilibrium.
机译:任何涉及超临界流体的过程的设计都需要一定程度的关于溶剂,溶质以及溶剂+溶质混合物的热物理和化学性质的知识。这些知识可以采取测量数据,基于测量数据的模型或预测的形式。显然,最昂贵的方法是获取每个感兴趣属性的测量数据,而最不准确的方法是始终使用预测。因此,最好的折衷方案是使用物理和工程模型,这些模型基于具有已知和可接受的不确定性的已测量特性。在这篇综述中,我们涵盖了使用超临界流体进行工艺设计所需数据的实验方面。为了清楚起见,将测量技术分为纯组分的性质(溶剂和溶质)和混合物的性质。对于纯组分,我们从溶剂开始,讨论流体的基本P-V-T表面,然后考虑粘度和导热率,溶剂相互作用特性,最后是化学稳定性。对于纯溶质,我们讨论了溶质蒸气压和化学稳定性。然后,讨论了超临界流体混合物(溶剂+溶质)的性质。在此,大量时间用于溶质溶解度的测量。我们还将讨论溶质扩散和汽/液平衡方面。

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