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Hilbert-Huang transform, Hurst and chaotic analysis based flow regime identification methods for an airlift reactor

机译:基于希尔伯特-黄变换,赫斯特和混沌分析的气举反应堆流态识别方法

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摘要

The flow regimes and their transitions in an internal loop airlift reactor were investigated. The Hilbert-Huang transform (HHT) was applied to analyze the energy-frequency-time distribution of the pressure signal. It was found that the Hilbert spectrum of the pressure signal was closely related to the superficial gas velocity. The stochastic behaviors of intrinsic mode functions (IMFs) extracted from the pressure signal were studied using the Hurst analysis. Two different Hurst exponents were obtained for each pressure signal: one was smaller than 0.5, while the other was larger than 0.5, representing the anti-persistent and persistent hydrodynamic behaviors, respectively. The evolution of the larger Hurst exponent clearly indicated flow regime transitions in the downcomer. The wavelet transform combined with the autocorrelation analysis were applied to extract chaotic components of the pressure signal. Two flow regime transition points were successfully detected from the evolution of chaotic parameters, i.e. the largest Lyapunov exponent, correlation dimension and Kolmogorov entropy.
机译:研究了内部回路空运反应堆中的流态及其过渡。采用希尔伯特-黄变换(HHT)分析压力信号的能量-频率-时间分布。发现压力信号的希尔伯特谱与表观气体速度密切相关。使用Hurst分析研究了从压力信号提取的本征模式函数(IMF)的随机行为。对于每个压力信号,获得了两个不同的赫斯特指数:一个小于0.5,而另一个大于0.5,分别表示抗持久和持久流体力学行为。较大的赫斯特指数的演变清楚地表明了下降管中的流态转变。应用小波变换与自相关分析相结合,提取压力信号的混沌分量。根据混沌参数的演化成功地检测到两个流动状态的过渡点,即最大的李雅普诺夫指数,相关维数和柯尔莫哥洛夫熵。

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