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Analysis of Fluid Energy Mill by gas-solid two-phase flow simulation

机译:气固两相流模拟分析流体能磨

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摘要

The particulate motions and collisions inside the Fluid Energy Mill were simulated by coupling the Discrete Element Method (DEM) and Computational Fluid Dynamics (CFD). The influences of the operating conditions on the particulate motions and collisions were investigated to further explain size reduction process. The high-speed grinding air streams introduced through narrow inlets selectively accelerate the particles located near the inlets. Those particles are more likely to hit the wall at a high speed, or collide with other particles due to the velocity difference. The simulation results also reveal that abrasion is the dominant breakage mechanism during the particle-particle collisions. On the other hand, with the increase of number of particles in the chamber, the particle-particle collision becomes more important for milling, compared to the particle-wall collision. The side-swipe particle-particle collisions also facilitate transferring of coating materials among particles, which explains the simultaneous milling and coating process recently developed in our lab.
机译:通过结合离散元方法(DEM)和计算流体动力学(CFD)来模拟流体能磨中的颗粒运动和碰撞。研究了操作条件对颗粒运动和碰撞的影响,以进一步解释减小尺寸的过程。通过狭窄的入口引入的高速研磨气流选择性地加速了位于入口附近的颗粒。这些粒子更可能高速撞击壁,或由于速度差异而与其他粒子碰撞。仿真结果还表明,磨损是颗粒间碰撞过程中的主要破坏机理。另一方面,随着腔室中颗粒数量的增加,与颗粒-壁碰撞相比,颗粒-颗粒碰撞对于研磨更为重要。侧向擦拭粒子间的碰撞也促进了涂料在粒子间的转移,这解释了我们实验室最近开发的同时研磨和涂层工艺。

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