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Air flow and particle transport in a triboelectric coal/ash cleaning system-counter flowing straight duct design

机译:摩擦电煤/灰清洁系统中的气流和颗粒输送-逆流直管设计

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摘要

The process of triboelectric coat/ash cleaning is outlined and a new design for scale-up to industrial systems is described. A straight rectangular duct forms the mixing chamber and the main body of this triboelectric separator. To improve mixing and to generate a uniform concentration in the main electrostatic separator duct, the mixture enters the mixing box in the form of two opposing jets.The stress transport model of the FLUENT code is used for simulating the mean gas flow and to guide the overall design of the electrostatic coallash separator. The three-dimensional computational grid covers the mixing chamber with the opposing inlets and the upper part of the main separator duct. The gas flow field conditions including the directional intensities of turbulence are evaluated. The instantaneous fluctuating velocity field was simulated by a Gaussian filtered white noise model. A recently developed computational model for Lagrangian particle tracking is used to study the transport of particles from the inlets to the main body of the separator duct. The model accounts for the drag and lift forces acting on the particle, in addition to the Brownian motion and gravitational sedimentation effects. The particles are also dispersed by the action of the high level of turbulence that is generated in the mixing chamber. The computational results show that the new design generates roughly uniform flow conditions in the triboelectric separator duct. Furthermore, the larger 1OO~m particles will have a more uniform distribution when compared with the smaller (40 jim) particles.The effect of the presence of an electric field perpendicular to the flow direction is also studied. It is shown that the charged particles are significantly deflected by the action of the electrostatic forces. As a result, the system could separate coal and ash particles that carry different charges. The simplicity and effectiveness of the straight duct separator makes it a prime candidate for scale-up for use in industrial applications for online coal beneficiation and separation of minerals from ash in combustion product.
机译:概述了摩擦电涂层/灰分清洁的过程,并描述了一种扩大到工业系统的新设计。直的矩形导管形成了该摩擦电分离器的混合室和主体。为了改善混合并在主静电分离器管道中产生均匀的浓度,混合物以两个相对的喷嘴形式进入混合箱.FLUENT代码的应力传递模型用于模拟平均气体流量并指导静电煤分离器的总体设计。三维计算网格覆盖了带有相对入口和主分离器管道上部的混合室。评价了包括湍流方向强度的气流场条件。利用高斯滤波白噪声模型模拟了瞬时脉动速度场。最近开发的拉格朗日粒子跟踪计算模型用于研究粒子从入口到分离器管道主体的传输。除了布朗运动和重力沉降效应之外,该模型还考虑了作用在粒子上的阻力和升力。颗粒还通过在混合室中产生的高水平湍流的作用而分散。计算结果表明,新设计在摩擦电分离管中产生了大致均匀的流动条件。此外,与较小的(40吉姆)粒子相比,较大的100微米粒子将具有更均匀的分布。还研究了垂直于流动方向的电场的影响。结果表明,带电粒子在静电力的作用下明显偏转。结果,该系统可以分离携带不同电荷的煤和灰分颗粒。直管分离器的简单性和有效性使其成为扩大规模的主要候选产品,可用于在线工业选煤以及从燃烧产物中的灰分中分离矿物。

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