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不同取向时的流动冷凝压力振荡。

Flow condensation pressure oscillations at different orientations.

作者信息

O'Neill Lucas E, Mudawar Issam, Hasan Mohammad M, Nahra Henry K, Balasubramaniam R, Mackey Jeffery R

机构信息

Purdue University Boiling and Two-Phase Flow Laboratory (PU-BTPFL), School of Mechanical Engineering, Purdue University, 585 Purdue Mall, West Lafayette, IN 47907, USA.

NASA Glenn Research Center, 21000 Brookpark Road, Cleveland, OH 44135, USA.

出版信息

Int J Heat Mass Transf. 2018 Dec;127:784-809. doi: 10.1016/j.ijheatmasstransfer.2018.07.072. Epub 2018 Jul 30.

Abstract

Investigation of two-phase flow dynamic behavior and instabilities has traditionally centered on phenomena present in boiling flows due to the safety critical nature of boiling in a variety of cooling applications. Analysis of pressure signals in condensing systems reveal the presence of relevant oscillatory phenomena during flow condensation as well, which may impact performance in applications concerned with precise system control. Towards this end, the present study presents results for oscillatory behavior observed in pressure measurements during flow condensation of FC-72 in a smooth circular tube in vertical upflow, vertical downflow, and horizontal flow orientations. Dynamic behavior observed within the test section is determined to be independent of other components within the flow loop, allowing it to be isolated and interpreted as resulting from physical aspects of two-phase flow with condensation. The presence of a peak oscillatory mode (one of significantly larger amplitude than any others present) is seen for 72% of vertical upflow test cases, 61% of vertical downflow, and 54% of horizontal flow. Relative intensities of this peak oscillatory mode are evaluated through calculation of Q Factor for the corresponding frequency response peak. Frequency and amplitude of peak oscillatory modes are also evaluated. Overall, vertical upflow is seen to exhibit the most significant oscillatory behavior, although in its maximum case amplitude is only seen to be 7.9% of time-averaged module inlet pressure, indicating there is little safety risk posed by oscillations under current operating conditions. Flow visualization image sequences for each orientation are also presented and used to draw parallels between physical characteristics of condensate film behavior under different operating conditions and trends in oscillatory behavior detected in pressure signals.

摘要

由于沸腾在各种冷却应用中具有安全关键性质,两相流动力学行为和不稳定性的研究传统上集中在沸腾流中出现的现象上。对冷凝系统中压力信号的分析表明,在流动冷凝过程中也存在相关的振荡现象,这可能会影响与精确系统控制相关的应用中的性能。为此,本研究给出了在垂直向上流动、垂直向下流动和水平流动方向的光滑圆形管中,FC - 72流动冷凝过程中压力测量所观察到的振荡行为的结果。试验段内观察到的动态行为被确定与流动回路中的其他组件无关,从而可以将其分离出来,并解释为两相流与冷凝的物理特性所致。在72%的垂直向上流动试验案例、61%的垂直向下流动试验案例和54%的水平流动试验案例中,都出现了峰值振荡模式(其幅度明显大于其他任何模式)。通过计算相应频率响应峰值的品质因数来评估该峰值振荡模式的相对强度。还对峰值振荡模式的频率和幅度进行了评估。总体而言,垂直向上流动表现出最显著的振荡行为,不过在其最大情况下,幅度仅为时间平均模块入口压力的7.9%,这表明在当前运行条件下,振荡带来的安全风险很小。还给出了每个流动方向的流动可视化图像序列,并用于在不同运行条件下冷凝液膜行为的物理特性与压力信号中检测到的振荡行为趋势之间建立联系。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/50bb/6349262/858a58b9a6aa/nihms-1000220-f0001.jpg

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