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Minimizing convection effects to measure diffusion in liquid droplets during high-temperature electrostatic levitation

机译:最小化对流效应,以测量高温静电悬浮过程中液滴的扩散

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摘要

We present an approach to reduce the convective flow in an electrostatically levitated liquid droplet to such an extent that diffusion is the dominant mechanism for mass transport, thus enabling direct measurements of atomic diffusion in reactive liquids at elevated temperatures. Convection is minimized by containerless processing, and reducing temperature variations in the sample. The diffusion tracer is deposited in situ in the electrostatic levitation device used for containerless processing. Uniform noncontact heating of the sample is achieved by laser heating with multiple beams arranged symmetrically, e.g., in a tetrahedral geometry. The expected temperature variations and the resulting convection flows are estimated for a Zr-based glass-forming alloy. The analysis suggests that diffusion experiments are possible throughout the entire undercooled liquid temperature range of this alloy and, in microgravity, up to 50 K above the liquidus temperature.
机译:我们提出了一种减少静电悬浮液滴中对流流动的方法,以使扩散是传质的主要机制,从而能够在升高的温度下直接测量反应性液体中原子的扩散。对流通过无容器处理最小化,并减少样品中的温度变化。扩散示踪剂原位沉积在用于无容器处理的静电悬浮装置中。样品的均匀非接触加热是通过用对称地(例如以四面体几何形状)排列的多束激光进行加热来实现的。对于Zr基玻璃成型合金,估计了预期的温度变化和所产生的对流。分析表明,可以在该合金的整个过冷液体温度范围内进行扩散实验,并且在微重力下,可以比液相线温度高出50K。

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