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A Novel Approach for Modeling Bubbling Gas-Solid Fluidized Beds

机译:鼓泡气固流化床建模的新方法

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摘要

A phenomenological discrete bubble model is proposed to help in the design and dynamic diagnosis of bubbling fluidized beds. An activation region mechanism is presented for bubble formation, making it possible to model large beds in a timely manner. The bubbles are modeled as spherical-cap discrete elements that rise through the emulsion phase that is considered as a continuum. The model accounts for the simultaneous interaction of neighboring bubbles by including the trailing effects due to the wake acceleration force. The coalescence process is not irreversible and therefore, the coalescing bubble pair is free to interact with other rising bubbles originating the splitting phenomena. To validate the model, the simulated dynamics are compared with both experimental and literature data. Time, frequency, and state space analysis are complementarily used with a multiresolution approach based on the empirical method of decomposition to explore the different dynamic scales appearing in both the simulated time series and those obtained from experimental runs. It is concluded that the bubble dynamics interactions play the main role as the driver of the resulting bed dynamics, matching the main features of measured bubble dynamics. Exploding bubble phenomena have been identified by establishing a direct relation between the bubble generation, interaction and eruption, and the measured signals.
机译:提出了一种现象学离散气泡模型,以帮助气泡流化床的设计和动态诊断。提出了一种用于气泡形成的激活区域机制,从而使及时建模大型床成为可能。气泡被建模为球形帽离散元素,这些元素通过被视为连续体的乳液相而上升。该模型通过包括由于尾流加速力引起的拖尾效应来解决相邻气泡的同时相互作用。聚结过程不是不可逆的,因此,聚结气泡对可以自由地与其他产生分裂现象的上升气泡相互作用。为了验证模型,将模拟动力学与实验和文献数据进行了比较。时间,频率和状态空间分析与基于经验分解方法的多分辨率方法互补使用,以探索在模拟时间序列和实验运行中出现的不同动态尺度。结论是,气泡动力学相互作用起着最终床动力学的驱动器的主要作用,与所测量的气泡动力学的主要特征相匹配。通过在气泡的产生,相互作用和喷发与测量的信号之间建立直接关系,可以识别出爆炸的气泡现象。

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