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Effect of electrostatic charge of particles on hydrodynamics of gas-solid fluidized beds

机译:粒子静电电荷对气固流化床流体动力学的影响

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The aim of this work was to investigate effect of electrostatic charge of particles on the fluidization hydrodynamics. Behavior of bubbles in beds of polyethylene particles was studied through analysis of pressure fluctuations in the frequency domain. Fluidized beds of uncharged, pre-charged and bed-charged particles were used in the experiments. Results revealed that in the bed of pre-charged particles, compared to uncharged experiments, particle-particle repulsive force increases the bed voidage and reduces equilibrium bubble size while the transition velocity to turbulent fluidization is decreased. In the case of bed charged particles, at low gas velocities bubble fraction is greater compare to the other cases due to faster bubble coalescence in the presence of particle-wall attractive electrostatic force. Electrostatic charge of bulk increases by increasing the gas velocity. At high gas velocities, the repulsion force between highly charged particles overcomes the particle-wall effect on bubble formation and reduces the bubble size to less than in uncharged experiments. Accumulation of particles near the wall in the bed od bed-charged particles affects the hydrodynamics in two ways: first it accelerates bubble growth via bubble coalescence at low gas velocities, second it limits the bubble growth and reduces the transition velocity to turbulent regime to a value less than for pre-charged particles. (C) 2019 The Society of Powder Technology Japan. Published by Elsevier B.V. and The Society of Powder Technology Japan. All rights reserved.
机译:这项工作的目的是调查粒子静电电荷对流化流体动力学的影响。通过分析频域中的压力波动研究了聚乙烯颗粒床中的泡沫的行为。在实验中使用了不带电,预充电和床带颗粒的流化床。结果表明,在预充电颗粒的床上与不带电的实验相比,粒子粒子排斥力增加了床空隙,并减少了平衡气泡尺寸,同时过渡速度降低到湍流流化。在床带带电粒子的情况下,在低气体速度下,泡沫级分由于粒子壁的含有粒度耐受静电力而较快的气泡聚结而比较的其他情况更大。通过增加气体速度,体积的静电电荷增加。在高气体速度下,高电荷颗粒之间的排斥力克服了对气泡形成的颗粒壁效应,并将气泡尺寸降低至小于在不带电实验中。床上床上床上带床上粒子附近的颗粒的积累以两种方式影响流体动力学:首先,通过气泡聚结以低气体速度加速气泡生长,第二次它限制了气泡生长并将过渡速度降低到湍流状态下降到湍流状态值小于预充电粒子。 (c)2019年日本粉末技术学会。由elsevier b.v发表。和日本粉末科技会。版权所有。

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