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Improved 3-omega measurement of thermal conductivity in liquid, gases, and powders using a metal-coated optical fiber

机译:使用金属涂层光纤改进了3Ω液体,气体和粉末中导热系数的测量

摘要

A novel 3ωthermal conductivitymeasurement technique called metal-coated 3ω is introduced for use with liquids, gases, powders, and aerogels. This technique employs a micron-scale metal-coated glass fiber as a heater/thermometer that is suspended within the sample. Metal-coated 3ω exceeds alternate 3ω based fluid sensing techniques in a number of key metrics enabling rapid measurements of small samples of materials with very low thermal effusivity (gases), using smaller temperature oscillations with lower parasitic conduction losses. Its advantages relative to existing fluid measurement techniques, including transient hot-wire, steady-state methods, and solid-wire 3ω are discussed. A generalized n-layer concentric cylindrical periodic heating solution that accounts for thermal boundary resistance is presented. Improved sensitivity to boundary conductance is recognized through this model. Metal-coated 3ω was successfully validated through a benchmark study of gases and liquids spanning two-orders of magnitude in thermal conductivity.
机译:介绍了一种新颖的3ω热导率测量技术,称为金属涂层3ω,可用于液体,气体,粉末和气凝胶。该技术采用微米级的金属涂层玻璃纤维作为悬浮在样品中的加热器/温度计。金属涂层3ω在许多关键指标上超过了基于3ω的替代流体传感技术,从而能够以较小的温度振荡和较低的寄生传导损耗对具有非常低热效率(气体)的小样品材料进行快速测量。相对于现有的流体测量技术,包括瞬态热线法,稳态方法和实心线3ω,它的优势得到了讨论。提出了考虑热边界电阻的广义n层同心圆柱周期加热解决方案。通过该模型可以提高对边界电导的敏感性。通过对气体和液体的热导率跨越两个数量级的基准研究,成功地验证了金属涂层3ω。

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