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首页> 外文期刊>Wear: an International Journal on the Science and Technology of Friction, Lubrication and Wear >A numerical 3D simulation for prediction of wear caused by solid particle impact
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A numerical 3D simulation for prediction of wear caused by solid particle impact

机译:用于预测由固体颗粒撞击引起的磨损的3D数值模拟

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摘要

Discrete element method has been used to simulate the behavior of particles interacting with a flat plate in order to define a relationship between shear-normal impact energy and wear rate during mechanical erosion. The analysis was performed for various collision angles, velocities and particle concentrations and, it was found that the shear impact energy of particles with the plate was maximized at collision angles near 30° where the wear rate had its maximum value. To investigate the influence of particles accumulation on the surface, a similar simulation procedure for a single particle impacting a plate was carried out and the results demonstrated the role of particles interactions on normal-shear impact energy and consequently on the erosion mechanism. Comparison of the simulation data with experimental data indicated that the shear impact energy was mainly relevant to cutting and cracking erosion mechanism while normal impact energy was related to forging and extrusion mechanisms. The results obtained suggest that this numerical simulation method may be used in a predictive way to study practical design problems and to explain some phenomena associated with solid particle impact erosion.
机译:离散元素方法已用于模拟颗粒与平板相互作用的行为,以定义机械腐蚀过程中的切变法向冲击能与磨损率之间的关系。对各种碰撞角,速度和颗粒浓度进行了分析,发现在磨损率达到最大值的接近30°的碰撞角处,颗粒对板的剪切冲击能最大。为了研究颗粒堆积在表面上的影响,对单个颗粒撞击板进行了类似的模拟程序,结果证明了颗粒相互作用对法向剪切冲击能的影响,并因此对侵蚀机理的作用。模拟数据和实验数据的比较表明,剪切冲击能主要与切削和裂纹侵蚀机理有关,而正常冲击能与锻造和挤压机理有关。获得的结果表明,该数值模拟方法可以预测性的方式使用,以研究实际的设计问题并解释与固体颗粒冲击腐蚀有关的某些现象。

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