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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >Numerical simulation of single particle acceleration process by SPH coupled FEM for abrasive waterjet cutting
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Numerical simulation of single particle acceleration process by SPH coupled FEM for abrasive waterjet cutting

机译:基于SPH耦合有限元的磨料射流切割单粒子加速过程的数值模拟。

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摘要

The existing numerical simulations of hydrodynamic characteristics of abrasive waterjet in a cutting head were mainly based on Eulerian grid or arbitrary Lagrange–Eulerian grid method to establish computational fluid dynamics models. However, using these two methods, the abrasive and water were premixed and given an identical initial velocity, which were different from the mixing and acceleration processes of abrasive in the cutting head. This paper presents a more suitable numerical model that the abrasive particle enters into the mixing chamber in a low velocity and is accelerated in the focus tube by a high-speed waterjet from the orifice. In order to model this mixing-and-acceleration process of abrasive and high-speed waterjet, the smooth particle hydrodynamics (SPH) coupled finite element method (FEM) is adopted, in which SPH particles are used to model the high-speed waterjet to adapt its extremely large deformation and FEM is applied to model the discrete abrasive particle, cutting head, and workpiece. As a result, evolution of abrasive and waterjet velocities along focus tube is analyzed; trajectory of single abrasive particle in focus tube is sighted; the relationships between abrasive particle velocities and different water pressures are described; the rule of outlet velocities of abrasive particle vs. dimensionless ratio of diameter is conducted; depth of penetration caused by single abrasive particle impact is obtained. The current model is validated by the existing theoretical and experimental data.
机译:现有的切割头喷水器水动力特性的数值模拟主要是基于欧拉网格或任意拉格朗日-欧拉网格方法来建立计算流体动力学模型。但是,使用这两种方法,将磨料和水预混合并赋予相同的初始速度,这与切削头中磨料的混合和加速过程不同。本文提出了一个更合适的数值模型,即磨料颗粒以低速进入混合室,并通过节流孔的高速喷水在聚焦管中加速。为了对磨料与高速水射流的混合和加速过程进行建模,采用了光滑粒子流体动力学(SPH)耦合有限元方法(FEM),其中使用SPH粒子对高速水射流进行建模,以实现以下目的:适应其极大的变形,并应用FEM对离散的磨料颗粒,切削头和工件进行建模。结果,分析了沿着聚焦管的磨料和水射流速度的变化;观察聚焦管中单个磨料颗粒的轨迹;描述了磨料颗粒速度与不同水压之间的关系;进行了磨料颗粒出口速度与直径无量纲比的变化规律。获得由单个磨料颗粒冲击引起的渗透深度。现有的理论和实验数据验证了当前模型。

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