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Flow regime identification in gas-solid two-phase fluidization via acoustic emission technique

机译:通过声发射技术在气固两相流化中的流动制度鉴定

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Highlights?This work studies flow regime transition processes with acoustic emission technique.?Fluidization behavior is explored by standard deviation and multi-scale analyses.?The multi-scale of acoustic signals can be obtained by Hurst and wavelet analyses.?The experimental values from acoustic signals are close to the empirical values.AbstractTo explore flow regime transition processes in gas-solid two-phase fluidization, a non-intrusive, real-time and environment-friendly acoustic emission technique and an auxiliary pressure fluctuation method were applied in this work. Particle activity and collision intensity in the bed are obtained through standard deviation analysis. On that basis, it is found that the acoustic signal measurements can more effectively reflect the transition velocities among major flow regimes, includinguc(from bubbling to turbulent fluidization),uk(from turbulent to fast fluidization), anduFD(from fast fluidization to dense phase pneumatic conveying). Meanwhile, the multi-scale resolution of acoustic signals during regime transitions can be obtained through Hurst and wavelet analyses. To be specific, micro-scale signals reflect the inter-particle collision and the particle-wall collision, meso-scale signals indicate the interactions and behaviors of particle clusters and gas phase, and macro-scale signals represent the average flow behavior. According to the comparison of experimental results, the experimental values of transition velocities obtained from acoustic signal measurement are closer to corresponding empirical values. In other words, the integration of standard deviation and multi-scale analyses with acoustic signal measurement can effectively identify flow regime transitions in real-time.]]>
机译:<![cdata [ 亮点 本作工作研究流动调节工艺具有声发射技术。 通过标准偏差探索流化行为和多种分析。 通过HUSST和小波分析可以获得多尺度的声学信号。 来自Acou的实验值STIC信号接近经验值。 抽象 探索气固两相流化的流动调节过程,非侵入式,实时和环保在这项工作中应用了声发射技术和辅助压力波动方法。通过标准偏差分析获得床中的颗粒活性和碰撞强度。在此基础上,发现声学信号测量可以更有效地反映主要流动制度之间的过渡速度,包括 u c (从冒泡到湍流流化), U K (从湍流到快速流化), u fd (从快速流化到密集相气动输送)。同时,可以通过HURST和小波分析获得制度转换期间声学信号的多尺度分辨率。具体而言,微级信号反映颗粒间碰撞和粒子壁碰撞,中间尺度信号表示粒子簇和气相的相互作用和行为,以及宏观信号代表平均流动行为。根据实验结果的比较,从声学信号测量获得的过渡速度的实验值更接近相应的经验值。换句话说,使用声学信号测量的标准偏差和多尺度分析的集成可以有效地实时识别流动调节转换。 ]]]>

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