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Flow Regime Recognition and Dynamic Characteristics Analysis of Air-Water Flow in Horizontal Channel under Nonlinear Oscillation Based on Multi-Scale Entropy

机译:基于多尺度熵的非线性振荡下水平通道空气流动的流动制度识别与动态特性分析

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摘要

Gas-liquid two-phase flow behavior in horizontal channel under heaving motion showed unique dynamic characteristics due to the complex nonlinear interaction. To further establish a description model and investigate the effects of heaving motion on horizontal gas-liquid flow, experiments in a wide range of vibration parameters and working conditions were carried out by combining vibration platform with two-phase flow loop. It was found that the flow regimes under heaving motion showed significant differences compared to the ones expected in steady state flow under the same working conditions. Increasing vibration parameters showed an obvious impact on fluctuation degree of gas-liquid interface by visualizing high-speed photographs. A method based on multi-scale entropy was applied to identify flow regimes and reveal the underlying dynamic characteristics by collecting signals of pressure-difference. The results indicated that the proposed method was effective to analyze gas-liquid two-phase flow transition in horizontal channel under heaving motion by incorporating information of flow condition and change rate of multi-scale entropy, which provided a reliable guide for flow pattern control design and safe operation of equipment. However, for slug-wave and boiling wave flow, an innovative method based on multi-scale marginal spectrum entropy showed more feasible for identification of transition boundary.
机译:由于复杂的非线性相互作用,水平通道下水平通道中的气液两相流动表现出独特的动态特性。为了进一步建立描述模型并研究了气象运动对水平气液流动的影响,通过将振动平台与两相流回路组合来执行各种振动参数和工作条件的实验。发现,与在相同工作条件下的稳态流动中的预期相比,气象下的流动制度表现出显着差异。通过可视化高速照片,增加振动参数对气液接口波动程度的影响显而易见。应用了一种基于多尺度熵的方法来识别流动制度,并通过收集压力差的信号来揭示潜在的动态特征。结果表明,该方法通过结合了多尺度熵的流量和变化率的流动条件和变化率的流量和变化率来分析水平通道中的气液两相流动转变。提供了一种可靠的流动模式控制设计指南安全的设备安全。然而,对于SLUG波和沸腾波流,基于多尺度边缘谱熵的创新方法显示出更加可行的过渡边界。

著录项

  • 期刊名称 Entropy
  • 作者

    Bo Sun; He Chang; Yun-Long Zhou;

  • 作者单位
  • 年(卷),期 2019(21),7
  • 年度 2019
  • 页码 667
  • 总页数 22
  • 原文格式 PDF
  • 正文语种
  • 中图分类
  • 关键词

    机译:气液两相流;悬挂动作;多尺度熵;
  • 入库时间 2022-08-21 12:20:42

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