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首页> 外文期刊>International Journal of Pressure Vessels and Piping >Prediction of residual stresses and distortions due to laser beam welding of butt joints in pressure vessels
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Prediction of residual stresses and distortions due to laser beam welding of butt joints in pressure vessels

机译:预测压力容器对接接头的激光束焊接引起的残余应力和变形

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摘要

A two-level three-dimensional Finite Element (FE) model has been developed to predict keyhole formation and thermo-mechanical response during Laser Beam Welding (LBW) of steel and aluminium pressure vessel or pipe butt-joints. A very detailed and localized (level-1) non-linear three-dimensional transient thermal model is initially developed, which simulates the mechanisms of keyhole formation, calculates the temperature distribution in the local weld area and predicts the keyhole size and shape. Subsequently, using a laser beam heat source model based on keyhole assumptions, a global (level-2) thermo-mechanical analysis of the LBW butt-joint is performed, from which the joint residual stresses and distortions are calculated. All the major physical phenomena associated to LBW, such as laser heat input via radiation, heat losses through convection and radiation, as well as latent heat are accounted for in the numerical model. Material properties and particularly enthalpy, which is very important due to significant material phase changes, are introduced as temperature-dependent functions. The main advantages of the developed model are its efficiency, flexibility and applicability to a wide range of LBW problems (e.g. welding for pressure vessel or pipework construction, welding of automotive, marine or aircraft components, etc). The model efficiency arises from the two-scale approach applied. Minimal or no experimental data are required for the keyhole size and shape computation by the level-1 model, while the thermo-mechanical response calculation by the level-2 model requires only process and material data. Therefore, it becomes possible to efficiently apply the developed simulation model to different material types and varying welding parameters (i.e. welding speed, heat source power, joint geometry, etc.) in order to control residual stresses and distortions within the welded structure.
机译:建立了两级三维有限元(FE)模型,以预测钢和铝压力容器或管对接接头的激光束焊接(LBW)期间的小孔形成和热机械响应。最初开发了一个非常详细且局部化的(1级)非线性三维瞬态热模型,该模型模拟了锁孔的形成机理,计算了局部焊接区域的温度分布,并预测了锁孔的大小和形状。随后,使用基于匙孔假设的激光束热源模型,对LBW对接接头进行了整体(第2级)热机械分析,从而计算了接头残余应力和变形。数值模型考虑了与LBW相关的所有主要物理现象,例如通过辐射输入的激光热,通过对流和辐射的热损失以及潜热。引入材料特性,尤其是焓,这是由于重要的材料相变而变得非常重要的,它是随温度变化的函数。所开发模型的主要优点是它的效率,灵活性和适用性,适用于各种LBW问题(例如压力容器或管道施工的焊接,汽车,船舶或飞机部件的焊接等)。模型效率源自所采用的两尺度方法。 1级模型计算锁孔尺寸和形状所需的实验数据最少或不需要,而2级模型进行的热机械响应计算仅需要过程和材料数据。因此,有可能有效地将开发的仿真模型应用于不同的材料类型和变化的焊接参数(即焊接速度,热源功率,接头几何形状等),以便控制焊接结构内的残余应力和变形。

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