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Bulk Coarse Particle Arching Phenomena in a Moving Bed with Fine Particle Presence

机译:具有细颗粒存在的移动床中的大体积粗颗粒拱起现象

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Bridging or arching of flowing solids particles is a serious hazard in the operation of moving bed systems. The mechanics of the arching has been extensively analyzed in the context of particle discharge from a hopper with conical geometry by considering the particulate layer stress distribution. However, bridging can also occur in a moving bed system with cylindrical geometry during the continuous mass flow of solids particles. Experimental work conducted in this study reveals that the appearance of solids bridging is normally accompanied by the presence of fine particles in the coarse moving particles as well as by the countercurrent interstitial gas flow. In this study, a stress analysis of the layered particles distributed in a cylindrical, vertical moving bed that flows downward opposing to upward flow of the interstitial gas is developed to quantify the bridging phenomenon. The analysis takes into account of the effects of presence of fine powder in the coarse particle flows and properties, such as particle-size distribution, bed voidage, and interstitial gas flow rate. The experimental validation of the present stress analysis for moving bed systems with varied fine and coarse particle concentration distributions, and interstitial gas velocities is also conducted. The stress distributions of the particles under flowing and arching conditions are obtained. An arching criterion is formulated, which indicates that the critical radius of the standpipe to avoid arching phenomenon is only related to the property of the bulk solids in the present geometric configuration of the flow system.
机译:流动的固体颗粒的桥接或拱形在移动床系统的操作中是严重的危害。考虑到颗粒层应力分布,在从具有锥形几何形状的料斗中排出颗粒的情况下,对拱形的机理进行了广泛的分析。然而,在固体颗粒的连续质量流期间,在具有圆柱形几何形状的移动床系统中也可能发生桥接。在这项研究中进行的实验工作表明,固体桥接的出现通常伴随着在粗大运动颗粒中存在细颗粒以及逆流间隙气流。在这项研究中,对分布在圆柱形垂直移动床中的层状颗粒进行应力分析,该层向下流动,与间隙气体的向上流动相反,向下流动,以量化桥接现象。该分析考虑了粗颗粒流中细粉的存在和性质(例如粒度分布,床空隙度和间隙气体流速)的影响。还对具有变化的细颗粒和粗颗粒浓度分布以及间隙气体速度的移动床系统进行了当前应力分析的实验验证。获得了在流动和拱形条件下颗粒的应力分布。制定了拱形判据,该判据表明,竖管的避免弧形现象的临界半径仅与流动系统当前几何构型中的散装固体的特性有关。

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