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首页> 外文期刊>Powder Technology: An International Journal on the Science and Technology of Wet and Dry Particulate Systems >Modeling, simulation, and analysis of the impact(s) of single angular-type particles on ductile surfaces using smoothed particle hydrodynamics
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Modeling, simulation, and analysis of the impact(s) of single angular-type particles on ductile surfaces using smoothed particle hydrodynamics

机译:使用平滑粒子流体动力学模拟,模拟和分析韧性表面延性表面的影响

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摘要

Modeling the impact of single angular particles contributes to an understanding of the fundamental mechanisms of erosive wear. However, most previous studies focus on well-defined symmetrical particles, which are not representative of abrasive particles. Hence, this study develops a mesh-free model based on smoothed particle hydrodynamics to simulate the impact(s) of arbitrarily shaped particles on ductile material. These particles are modeled as polygonal rigid bodies by measuring the corner vertices. Oxygen-free high thermal conductivity copper is selected as the target material. The ductile material properties are modeled using the Mie-Gruneisen equation of state and the Johnson-Cook model. In order to investigate the erosion dependency of angular-type particles on the initial orientation, simulations are performed by varying the initial input conditions and using different types of angular particles. Common deformation mechanisms such as cutting, machining, ploughing, and prying-off are successfully reproduced by the model. The initial orientation is found to influence the erosion mechanism through three shape-related parameters, namely the rake angle, centroid offset angle, and angularity of the impacting vertex. In particular, the rake angle significantly influences the erosion mechanism through particle rotation, although this effect decreases as the angularity increases. The centroid offset angle additionally changes the position of the critical rake angle, producing an opposite effect on the backward and forward impact. For irregularly shaped particles, the complexity is reflected in the irregular relationship between kinetic energy loss and the initial orientation of the particle; the variation in the rebound angle exhibits a similar trend to the kinetic energy loss. (C) 2017 Elsevier B.V. All rights reserved.
机译:建模单个角粒子的影响有助于了解侵蚀磨损的基本机制。然而,最先前的研究专注于明确定义的对称颗粒,其不代表磨粒颗粒。因此,该研究基于平滑的粒子动力学开发一种网眼模型,以模拟任意形状颗粒对延性材料的影响。这些颗粒通过测量拐角顶点来建模为多边形刚性体。选择无氧的高导热铜作为靶材料。使用状态的mie-gruneisen方程和johnson-cook模型建模延性材料性质。为了研究角度型粒子对初始取向的侵蚀依赖性,通过改变初始输入条件并使用不同类型的角粒子来执行模拟。通过模型成功再现了常见变形机制,例如切割,加工,耕作和窥探。发现初始取向通过三个形状相关参数来影响侵蚀机制,即耙角,质心偏移角度和冲击顶点的角度性。特别地,耙角通过颗粒旋转显着影响侵蚀机制,尽管随着角度的增加而降低,这种效果降低。质心偏移角度还改变了临界犁角的位置,产生对后向和前向冲击的相反影响。对于不规则形状的颗粒,复杂性反映在动能损失与颗粒的初始取向之间的不规则关系中;回弹角的变化表现出类似的动能损失的趋势。 (c)2017 Elsevier B.v.保留所有权利。

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