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Time-series analysis of pressure fluctuations in gas-solid fluidized beds - A review

机译:气固流化床压力波动的时间序列分析-综述

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This work reviews methods for time-series analysis for characterization of the dynamics of gas-solid fluidized beds from in-bed pressure measurements for different fluidization regimes. The paper covers analysis in time domain, frequency domain, and in state space. It is a follow-up and an update of a similar review paper written a decade ago. We use the same pressure time-series as used by Johnsson et al. (2000). The paper updates the previous review and includes additional methods for time-series analysis, which have been proposed to investigate dynamics of gas-solid fluidized beds. Results and underlying assumptions of the methods are discussed. Analysis in the time domain is often the simplest approach. The standard deviation of pressure fluctuations is widely used to identify regimes in fluidized beds, but its disadvantage is that it is an indirect measure of the dynamics of the flow. The so-called average cycle time provides information about the relevant time scales of the system, making it an easy-to-calculate alternative to frequency analysis. Autoregressive methods can be used to show an analogy between a fluidized bed and a single or a set of simple mechanical systems acting in parallel. The most common frequency domain method is the power spectrum. We show that - as an alternative to the often used non-parametric methods to estimate the power spectrum - parametric methods can be useful. To capture transient effects on a longer time scale (>1. s), either the transient power spectral density or wavelet analysis can be applied. For the state space analysis, the information given by the Kolmogorov entropy is equivalent to that of the average frequency, obtained in the frequency domain. However, an advantage of certain state space methods, such as attractor comparison, is that they are more sensitive to small changes than frequency domain methods; this feature can be used for, e.g., on-line monitoring. In general, we conclude that, over the past decade, progress has been made in understanding fluidized-bed dynamics by extracting the relevant information from pressure fluctuation data, but the picture is still incomplete.
机译:这项工作审查了时间序列分析的方法,这些方法可根据不同流化方式的床内压力测量来表征气固流化床的动力学特性。本文涵盖了时域,频域和状态空间中的分析。这是十年前撰写的类似评论文章的跟进和更新。我们使用与Johnsson等人相同的压力时间序列。 (2000)。该文件更新了以前的综述,并包括了用于时序分析的其他方法,这些方法已被提议用于研究气固流化床的动力学。讨论了方法的结果和基本假设。时域分析通常是最简单的方法。压力波动的标准偏差已广泛用于识别流化床中的状态,但其缺点是它是流动动态的间接度量。所谓的平均周期时间提供有关系统相关时间范围的信息,从而使其易于计算,成为频率分析的替代方法。自回归方法可用于显示流化床与单个或一组并行作用的简单机械系统之间的类比。最常见的频域方法是功率谱。我们证明-作为常用的非参数方法来估计功率谱的替代方法,参数方法可能会有用。为了在更长的时间范围内(> 1 s)捕获瞬态效应,可以应用瞬态功率谱密度或小波分析。对于状态空间分析,由Kolmogorov熵给出的信息等效于在频域中获得的平均频率的信息。但是,某些状态空间方法(例如吸引子比较)的优点是,它们比频域方法对较小的变化更敏感。此功能可用于例如在线监视。总的来说,我们得出的结论是,在过去的十年中,通过从压力波动数据中提取相关信息,在了解流化床动力学方面取得了进展,但情况仍然不完整。

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