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Improved gas metal arc welding multi-physics process model and its application to MIL A46100 armor-grade steel butt-welds

机译:改进的气体金属电弧焊多物理场工艺模型及其在MIL A46100装甲级钢对接焊缝中的应用

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摘要

Purpose - The purpose of this paper is to develop multi-physics computational model for the conventional gas metal arc welding (GMAW) joining process has been improved with respect to its predictive capabilities regarding the spatial distribution of the mechanical properties (strength, in particular) within the weld. Design/methodology/approach - The improved GMAW process model is next applied to the case of butt-welding of MIL A46100 (a prototypical high-hardness armor-grade martensitic steel) workpieces using filler-metal electrodes made of the same material. A critical assessment is conducted of the basic foundation of the model, including its five modules, each dedicated to handling a specific aspect of the GMAW process, i.e.: first, electro-dynamics of the welding-gun; second, radiation/convection controlled heat transfer from the electric arc to the workpiece and mass transfer from the filler-metal consumable electrode to the weld; third, prediction of the temporal evolution and the spatial distribution of thermal and mechanical fields within the weld region during the GMAW joining process; fourth, the resulting temporal evolution and spatial distribution of the material microstructure throughout the weld region; and fifth, spatial distribution of the as-welded material mechanical properties. Findings - The predictions of the improved GMAW process model pertaining to the spatial distribution of the material microstructure and properties within the MIL A46100 butt-weld are found to be consistent with general expectations and prior observations. Originality/value - To explain microstructure/property relationships within different portions of the weld, advanced physical-metallurgy concepts and principles are identified, and their governing equations parameterized and applied within a post-processing data-reduction procedure.
机译:目的-本文的目的是为常规的气体保护金属电弧焊(GMAW)的焊接过程开发多物理场计算模型,该模型在机械性能的空间分布(特别是强度)的预测能力方面得到了改进在焊缝内。设计/方法/方法-改进的GMAW工艺模型随后应用于使用相同材料制成的填充金属电极对MIL A46100(一种典型的高硬度铠装级马氏体钢)工件进行对接焊接的情况。对模型的基本基础进行了严格的评估,包括模型的五个模块,每个模块专用于处理GMAW过程的特定方面,即:首先,焊枪的电动特性;第二,辐射/对流控制的电弧从电弧到工件的热传递以及从填充金属消耗电极到焊缝的质量传递;第三,在GMAW焊接过程中,预测焊接区域内热场和机械场的时间演变和空间分布;第四,整个焊接区域材料微观结构的时间演变和空间分布;第五,焊接材料力学性能的空间分布。发现-与MIL A46100对接焊缝中的材料微观结构和性能的空间分布有关的改进GMAW工艺模型的预测与一般预期和先前的观察结果一致。独创性/价值-为了解释焊缝不同部分之间的微观结构/性能关系,确定了先进的物理冶金概念和原理,并将它们的控制方程式参数化并应用于后处理数据精简程序中。

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  • 作者单位

    Department of Mechanical Engineering, Clemson University, Clemson, South Carolina, USA;

    Department of Mechanical Engineering, Clemson University, Clemson, South Carolina, USA;

    Department of Mechanical Engineering, Clemson University, Clemson, South Carolina, USA;

    Department of Mechanical Engineering, Clemson University, Clemson, South Carolina, USA;

    Department of Mechanical Engineering, Clemson University, Clemson, South Carolina, USA;

    Army Research Laboratory, Survivability Materials Branch, Aberdeen Proving Ground, Aberdeen, Maryland, USA;

    Army Research Laboratory, Survivability Materials Branch, Aberdeen Proving Ground, Aberdeen, Maryland, USA;

    Army Research Laboratory, Survivability Materials Branch, Aberdeen Proving Ground, Aberdeen, Maryland, USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Gas metal arc welding (GMAW); MIL A46100 armor-grade steel; Multi-Physics Process Modelling;

    机译:气体保护金属电弧焊(GMAW);MIL A46100装甲级钢;多物理过程建模;

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