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A Discrete Approach to Meshless Lagrangian Solid Modeling

机译:无网格拉格朗日实体建模的离散方法

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The author demonstrates a stable Lagrangian solid modeling method, tracking the interactions of solid mass particles rather than using a meshed grid. This numerical method avoids the problem of tensile instability often seen with smooth particle applied mechanics by having the solid particles apply stresses expected with Hooke’s law, as opposed to using a smoothing function for neighboring solid particles. This method has been tested successfully with a bar in tension, compression, and shear, as well as a disk compressed into a flat plate, and the numerical model consistently matched the analytical Hooke’s law as well as Hertz contact theory for all examples. The solid modeling numerical method was then built into a 2-D model of a pressure vessel, which was tested with liquid water particles under pressure and simulated with smoothed particle hydrodynamics. This simulation was stable, and demonstrated the feasibility of Lagrangian specification modeling for fluid–solid interactions.
机译:作者演示了一种稳定的拉格朗日实体建模方法,该方法可跟踪固体质量粒子的相互作用,而不是使用网格。这种数值方法通过使固体颗粒施加胡克定律预期的应力,而不是对相邻的固体颗粒使用平滑功能,从而避免了在光滑的颗粒施加力学中经常看到的拉伸不稳定性问题。该方法已经在拉力,压缩和剪切力以及压缩成平板的圆盘上进行了成功的测试,并且数值模型始终符合解析的胡克定律和赫兹接触理论。然后将固体建模数值方法构建到压力容器的二维模型中,该模型在压力下用液态水颗粒进行测试,并用平滑的颗粒流体动力学进行模拟。该模拟是稳定的,并证明了拉格朗日规范模型在流固耦合中的可行性。

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