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密度波振荡对流动沸腾系统动态行为和稳定性影响的实验研究。

Experimental investigation into the impact of density wave oscillations on flow boiling system dynamic behavior and stability.

作者信息

O'Neill Lucas E, Mudawar Issam, Hasan Mohammad M, Nahra Henry K, Balasubramaniam R, Hall Nancy R, Lokey Aubrey, 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 May;120:144-166. doi: 10.1016/j.ijheatmasstransfer.2017.12.011. Epub 2017 Dec 18.

Abstract

In order to better understand and quantify the effect of instabilities in systems utilizing flow boiling heat transfer, the present study explores dynamic results for pressure drop, mass velocity, thermodynamic equilibrium quality, and heated wall temperature to ascertain and analyze the dominant modes in which they oscillate. Flow boiling experiments are conducted for a range of mass velocities with both subcooled and saturated inlet conditions in vertical upflow, vertical downflow, and horizontal flow orientations. High frequency pressure measurements are used to investigate the influence of individual flow loop components (flow boiling module, pump, pre-heater, condenser, ) on dynamic behavior of the fluid, with fast Fourier transforms of the same used to provide critical frequency domain information. Conclusions from this analysis are used to isolate instabilities present within the system due to physical interplay between thermodynamic and hydrodynamic effects. Parametric analysis is undertaken to better understand the conditions under which these instabilities form and their impact on system performance. Several prior stability maps are presented, with new stability maps provided to better address contextual trends discovered in the present study.

摘要

为了更好地理解和量化利用流动沸腾传热的系统中不稳定性的影响,本研究探索了压降、质量流速、热力学平衡干度和加热壁温的动态结果,以确定和分析它们振荡的主导模式。在垂直向上流动、垂直向下流动和水平流动方向上,针对一系列质量流速以及过冷和饱和入口条件进行了流动沸腾实验。高频压力测量用于研究各个流动回路组件(流动沸腾模块、泵、预热器、冷凝器等)对流体动态行为的影响,并对其进行快速傅里叶变换以提供关键的频域信息。该分析得出的结论用于隔离由于热力学和流体动力学效应之间的物理相互作用而在系统中出现的不稳定性。进行参数分析以更好地理解这些不稳定性形成的条件及其对系统性能的影响。给出了几个先前的稳定性图,并提供了新的稳定性图以更好地应对本研究中发现的背景趋势。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e18a/6349258/a4827944e377/nihms-1000209-f0001.jpg

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