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Magnetofluidization of fine magnetite powder

机译:细磁铁矿粉的磁流化

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摘要

The behavior of a fluidized bed of fine magnetite particles as affected by a cross-flow magnetic field is investigated. A distinct feature of this naturally cohesive powder, as compared to noncohesive magnetic grains usually employed in magnetofluidized beds, is that the fluidized bed displays a range of stable fluidization even in the absence of an external magnetic field. Upon application of the magnetic field, the interval of stable fluidization is extended to higher gas velocities and bed expansion is enhanced. We have measured the tensile strength as affected by application of the external magnetic field according to two different operation modes.In the H off-on operation mode, the bed is driven to bubbling in the absence of external magnetic field. Once the gas velocity is decreased below the bubbling onset and the bed has returned to stable fluidization due to natural cohesive forces, the field is applied. In the H on-on mode, the field is maintained during the whole process of bubbling and return to stable fluidization. It is found that the tensile strength of the naturally stabilized bed is not essentially changed by application of the field _H off-on_ since the magnetic field cannot alter the bed structure once the particles are jammed in the stable fluidization state. Magnetic forces within the bulk of the jammed bed are partially canceled as a result of the anisotropic nature of the dipole-dipole interaction between the particles, which gives rise to just a small increment of the tensile strength. On the other hand, when the field is held on during bubbling and transition to stable fluidization _H on-on mode_, the tensile strength is appreciably increased. This suggests the formation of particle chains when the particles are not constrained due to the dipole-dipole attractive interaction which affects the mechanical strength of the stably fluidized bed. Experimental data are analyzed in the light of theoretical models on magnetic surface stresses.
机译:研究了细磁铁矿颗粒流化床受横流磁场的影响。与通常在磁流化床中使用的非粘性磁性颗粒相比,这种天然粘性粉末的显着特征是,即使在没有外部磁场的情况下,流化床也显示出稳定的流化范围。施加磁场后,稳定流化的间隔延长到更高的气体速度,床层膨胀得到增强。我们根据两种不同的操作模式测量了受外部磁场施加的拉伸强度。在H-off-on操作模式下,在没有外部磁场的情况下将床驱动鼓泡。一旦气体速度降低到起泡开始以下,并且由于自然的内聚力使床层回到稳定的流化状态,便开始施加电场。在开通模式下,在整个起泡过程中保持磁场,并恢复稳定的流化状态。已经发现,自然施加的床的抗张强度基本上不会通过施加场-H off-on_来改变,因为一旦粒子以稳定的流化状态被阻塞,磁场就不会改变床的结构。由于颗粒之间的偶极-偶极相互作用的各向异性,部分堵塞的床内的磁力会被抵消,从而导致拉伸强度的增加很小。另一方面,当在鼓泡和过渡到稳定的流态化_H on-on mode_期间保持电场时,抗拉强度会明显提高。这表明当颗粒不受偶极-偶极吸引相互作用的影响而受到约束时,颗粒链的形成会影响稳定流化床的机械强度。根据有关磁性表面应力的理论模型分析实验数据。

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