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Modelling of Thermal Transport in Wire + Arc Additive Manufacturing Process

机译:线+电弧增材制造过程中的热传递建模

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Due to the simultaneous effects of different physical phenomena that occur on different length and time scales, modelling the fusion and heat affected microstructure of an Additive Manufacturing (AM) process requires more than intelligent meshing schemes to make simulations feasible. The purpose of this research was to develop an efficient high quality and high precision thermal model in wire + arc additive manufacturing process. To quantify the influence of the process parameters and materials on the entire welding process, a 3D transient non-linear finite element model to simulate multi-layer deposition of cast IN-738LC alloy onto SAE-AISI 1524 Carbon Steel Substrates was developed. Temperature-dependent physical properties and the effect of natural and forced convection were included in the model. A moving heat source was applied over the top surface of the specimen during a period of time that depends on the welding speed. The effect of multi-layer deposition on the prediction and validation of melting pool shape and thermal cycles was also investigated. The heat loss produced by convection and radiation in the AM layers surfaces were included into the finite element analysis. As the AM layers itself act as extended surfaces (fins), it was found that the heat extraction is quite significant. The developed thermal model is quite accurate to predict thermal cycles and weld zones profiles. A firm foundation for modelling thermal transport in wire + arc additive manufacturing process it was established.
机译:由于在不同的长度和时间尺度上发生的不同物理现象的同时影响,对增材制造(AM)过程的融合和受热影响的微观结构进行建模需要的比智能网格划分方案更多的条件才能使仿真可行。这项研究的目的是在焊丝+电弧增材制造过程中开发一种高效,高质量和高精度的热模型。为了量化工艺参数和材料对整个焊接过程的影响,开发了一个3D瞬态非线性有限元模型,以模拟IN-738LC铸造合金在SAE-AISI 1524碳钢基底上的多层沉积。该模型包括与温度有关的物理特性以及自然对流和强制对流的影响。在一段取决于焊接速度的时间内,将移动的热源施加在样品的顶表面上。还研究了多层沉积对熔池形状和热循环的预测和验证的影响。有限元分析中包括了AM层表面对流和辐射产生的热损失。由于AM层本身用作扩展表面(散热片),因此发现吸热非常重要。所开发的热模型可以非常准确地预测热循环和焊接区轮廓。它建立了用于线+电弧增材制造过程中热传递模型的牢固基础。

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