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Methodological considerations for studying self-weight fluidization in a sedimentation column

机译:研究沉降塔自重流化的方法学考虑

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Traditionally, the onset of fluidization has been examined in the laboratory by observing the formation of inflection points atop the descending mudline interface of a batch test. Recent preliminary experiments question the efficacy of inflection points for indicating the occurrence of fluidization. The utility of the mudline interface to uniquely identify the occurrence of fluidization is examined here. Alternative ways via laboratory and computational tools are employed to describe the temporal and spatial characteristics of fluidization. Detailed controlled experiments are performed for a pure kaolinite-water mixture under different initial concentrations and initial suspension heights. The experimental work is complemented with the use of an existing 1-D batch sedimentation model that accounts for the upward propagation of fluid and provides the variation of the mudline interface with time. Analysis of the experimental results shows that the onset of self-weight fluidization occurs in the early stages of a test, and not within the second falling rate region as other researchers have reported. Formation and upward propagation of fluidization pipes, typically with a diameter of 0.5-5 mm, are recorded. The numerical results further validate the experimental observations that self-weight fluidization cannot be always detected by observing the mudline interface. These findings agree with other results reported in the literature.
机译:传统上,流化的发生是在实验室中通过观察间歇测试的下降泥线界面顶部的拐点形成而进行的。最近的初步实验质疑拐点指示流化现象的功效。这里检查了泥线界面用于唯一识别流化现象的实用性。通过实验室和计算工具的替代方法被用来描述流化的时间和空间特征。对纯高岭石-水混合物在不同的初始浓度和初始悬浮高度下进行了详细的受控实验。使用现有的一维批量沉降模型对实验工作进行补充,该模型考虑了流体的向上传播并提供了泥线界面随时间的变化。对实验结果的分析表明,自重流态化的发生发生在测试的早期阶段,而不是其他研究人员所报告的第二下降速率区域内。记录流化管的形成和向上传播,流化管的直径通常为0.5-5 mm。数值结果进一步验证了通过观察泥线界面不能总是检测到自重流化的实验观察结果。这些发现与文献报道的其他结果一致。

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