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Modelling of metal deposition

机译:金属沉积建模

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Modelling and simulation of metal deposition (MD) poses several challenges to the modeller in addition to the usual challenges in modelling of welding. The aim of the work presented in this paper is to enable simulation of metal deposition for large three-dimensional components. Weld paths that are created in an off-line programming system (OLP) can be used directly to prescribe the movement of the heat source in the model. The addition of filler material is done by activation of elements. Special care must be taken to the positioning of the elements, due to large deformations. Nodes are moved to ensure that the added material has correct volume and shape. A physically based material model is also implemented. This material model is able to describe the material behaviour over a large strain, strain rate and temperature range. Temperature measurements and deformation measurements are done in order to validate the model. The computed thermal history is in very good agreement with measurements. The computed and measured deformations also show quite good agreement. It has been shown that the approach yields correct results, providing that flow stress and heat input models are calibrated with sufficient accuracy. The method reduces the modelling work considerably for metal deposition and multipass welding. It can be used for detailed models but also lumping of welds is possible and often necessary for industrial applications.
机译:金属沉积(MD)的建模和仿真除了对焊接进行建模时通常遇到的挑战之外,还对建模人员提出了一些挑战。本文提出的工作目的是为了能够模拟大型三维零件的金属沉积。离线编程系统(OLP)中创建的焊接路径可直接用于规定模型中热源的移动。填充材料的添加是通过激活元素来完成的。由于变形较大,必须特别注意元件的位置。移动节点以确保添加的材料具有正确的体积和形状。还实现了基于物理的材料模型。该材料模型能够描述大应变,应变速率和温度范围内的材料行为。进行温度测量和变形测量以验证模型。计算出的热历史与测量值非常吻合。计算和测量的变形也显示出很好的一致性。已经证明,如果以足够的精度校准流应力和热输入模型,该方法将产生正确的结果。该方法大大减少了金属沉积和多道次焊接的建模工作。它可以用于详细模型,但是焊缝集总是可能的,并且对于工业应用通常是必需的。

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