| Microscale rarefied gas dynamics and surface interactions for EUVL and MEMS applications. | |
| Gallis, Michail A. ; Rader, Daniel John ; Castaneda, Jaime N. ; Torczynski, John Robert ; Grasser, Thomas W. ; Trott, Wayne Merle | |
| Sandia National Laboratories | |
| 关键词: Thermistors Heat Flux.; Heat Flux; Gas Dynamics.; Plates; Heat Flux.; | |
| DOI : 10.2172/919200 RP-ID : SAND2004-5329 RP-ID : AC04-94AL85000 RP-ID : 919200 |
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| 美国|英语 | |
| 来源: UNT Digital Library | |
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【 摘 要 】
A combined experimental/modeling study was conducted to better understand the critical role of gas-surface interactions in rarefied gas flows. An experimental chamber and supporting diagnostics were designed and assembled to allow simultaneous measurements of gas heat flux and inter-plate gas density profiles in an axisymmetric, parallel-plate geometry. Measurements of gas density profiles and heat flux are made under identical conditions, eliminating an important limitation of earlier studies. The use of in situ, electron-beam fluorescence is demonstrated as a means to measure gas density profiles although additional work is required to improve the accuracy of this technique. Heat flux is inferred from temperature-drop measurements using precision thermistors. The system can be operated with a variety of gases (monatomic, diatomic, polyatomic, mixtures) and carefully controlled, well-characterized surfaces of different types (metals, ceramics) and conditions (smooth, rough). The measurements reported here are for 304 stainless steel plates with a standard machined surface coupled with argon, helium, and nitrogen. The resulting heat-flux and gas-density-profile data are analyzed using analytic and computational models to show that a simple Maxwell gas-surface interaction model is adequate to represent all of the observations. Based on this analysis, thermal accommodation coefficients for 304 stainless steel coupled with argon, nitrogen, and helium are determined to be 0.88, 0.80, and 0.38, respectively, with an estimated uncertainty of {+-}0.02.
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| Files | Size | Format | View |
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| 919200.pdf | 1012KB |
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