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Revisiting the Rayleigh-Taylor instability and critical heat flux with R-123 for different heater sizes and pressures

机译:使用R-123重新研究瑞利泰勒不稳定性和临界热通量,以适应​​不同的加热器尺寸和压力

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This paper presents how the relationships between the Rayleigh-Taylor (RT) instability and the critical heat flux (CHF) and minimum heat flux (MHF) change under different experimental conditions. Experimental observations of the RT instability wavelength for various wire surface diameters and system pressures were analyzed to characterize the CHF and MI-IF in a pressurized wire pool boiling facility. Three types of heater diameter surfaces were considered: 03, 0.5, and 0.7 mm diameter bare Ni Cr wires. The experimental system pressure ranged from 1 bar to 9 bar for observation of the RT instability wavelength changes in the CHF and MHF with the 0.5 mm diameter wire. High-speed video was used to analyze the changes in the RT instability wavelength under each experimental condition. The wavelengths at the CHF and MHF regions were characterized according to the heater diameter and system pressure. The results showed that using the change in the RT instability wavelength is a viable means of determining the variations in the CHF and MHF during pool boiling. (C) 2015 Elsevier Masson SAS. All rights reserved.
机译:本文介绍了在不同实验条件下,瑞利-泰勒(RT)不稳定性与临界热通量(CHF)和最小热通量(MHF)之间的关系如何变化。分析了各种金属丝表面直径和系统压力的RT不稳定性波长的实验观察结果,以表征加压金属丝熔池沸腾设备中的CHF和MI-IF。考虑了三种类型的加热器直径表面:直径为03、0.5和0.7毫米的裸镍铬丝。实验系统压力范围为1 bar至9 bar,用于观察直径为0.5 mm的导线在CHF和MHF中的RT不稳定波长变化。使用高速视频分析每种实验条件下RT不稳定性波长的变化。 CHF和MHF区域的波长根据加热器直径和系统压力来表征。结果表明,利用RT不稳定性波长的变化是确定池沸腾过程中CHF和MHF变化的可行方法。 (C)2015 Elsevier Masson SAS。版权所有。

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