论文标题

在微重力条件下进行气溶胶稳定性调查的新实验设置

A new experimental set-up for aerosol stability investigations in microgravity conditions

论文作者

Graziani, Charles, Nespoulous, Mathieu, Denoyel, Renaud, Fauve, Stephan, Chauveau, Christian, Deike, Luc, Antoni, Mickaël

论文摘要

分散培养基的时间和空间演变是在各种物理化学系统(例如乳液,悬浮液和气溶胶)中的基本问题。这些系统是多面形的,涉及不同密度的化合物。因此,它们受重力的影响,这决定了分散阶段的沉积率。这种作用可能是主导的,并防止对成分本身之间发生的现象进行详细研究,例如乳液中滴的滴,液滴的蒸发或悬浮液中的絮凝。在这种情况下,在受控条件下,国家d'Etudes空间人(CNES)最近支持开发一种新工具,以生产液滴种群,半径为几微米,目的是允许对其在微重力条件下的性质进行详细研究。该仪器的原理是通过在大约2 mm3的体积内以光学扫描模式在传输模式下进行光学扫描模式来快速压缩/膨胀,并通过光学扫描层析成像来跟踪其演变。抛物线飞行实验表明有可能生成并准确遵循数百滴人群的演变超过20秒。第一个实验结果表明,在施加von karman旋转流动时,可以研究其蒸发动力学或运动。这项工作是CNES支持的Declic-Evo的气溶胶项目的一部分,旨在帮助理解云微物理学,这在全球变暖的背景下仍然是一个关键的开放问题。

The temporal and spatial evolution of dispersed media is a fundamental problem in a wide range of physicochemical systems, such as emulsions, suspensions and aerosols. These systems are multiphasic and involve compounds of different densities. They are therefore subject to the influence of gravity which determines the sedimentation rate of their dispersed phase. This effect can be dominant and prevent a detailed study of the phenomena occurring between the constituents themselves, such as the coalescence of drops in emulsions, the evaporation of droplets or the flocculation in suspensions. In this context, the Centre National d'Etudes Spatiales (CNES) has recently supported the development of a new instrument to produce populations of droplets, a few micrometers in radius, under controlled conditions with the objective of allowing a detailed study of their properties in microgravity conditions. The principle of this instrument is to generate, by a fast compression/expansion of air, populations of water droplets and to track their evolution by optical scanning tomography in transmission mode within a volume of approximately 2 mm3. Parabolic flight experiments have shown the possibility to generate and accurately follow the evolution of populations of several hundred droplets for more than 20 seconds. The first experimental results show that it is possible to study their evaporation kinetics or their motion when imposing Von Karman swirling flows. This work is part of the AEROSOL project of DECLIC-EVO supported by CNES and aims to help the understanding of cloud microphysics which remains a critical open problem in the context of global warming.

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