Modeling and simulation of weld residual stresses and ultrasonic impact treatment of welded joints

Jing Zheng , Ayhan Ince , Lanqing Tang
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引用次数: 35

Abstract

Most structures are fabricated using welded joints because of its low cost, structural strength and geometric flexibility. Welding is considered a highly complex metallurgical process that results in irregular geometries, material imperfections/flaws and tensile residual stresses. High tensile residual stresses and stress concentrations resulting from the weld process have a significant impact on fatigue life of structures, and thus a topic of great concern in product design. Ultrasonic impact treatment (UIT) is regarded as one of the most effective post welding treatment techniques to enhance the fatigue performance of welded structures. The UIT aims to introduce fatigue-beneficial compressive stresses by plastically deforming the weld toe and reduce stress concentrations by modifying local weld geometries. In this study, 3D modeling and simulation using finite element (FE) method has been performed to simulate welding process and numerical modeling of the UIT process to predict weld residual stress distribution of butt and T weld joints. The predicted numerical results under as-welded and UIT treatment conditions were compared to present weld residual stress improvements. Compared results shows that the UIT has potential applications on the fatigue design of welded structures, can lead to lighter structures and products, in which structures can be down-sized and optimized to reduce weights.

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焊缝残余应力建模与仿真及焊接接头超声冲击处理
由于其成本低、结构强度高、几何柔韧性好,大多数结构都采用焊接接头制造。焊接被认为是一个高度复杂的冶金过程,导致不规则的几何形状,材料缺陷/缺陷和拉伸残余应力。焊接过程中产生的高拉伸残余应力和应力集中对结构的疲劳寿命有重大影响,因此是产品设计中非常关注的问题。超声冲击处理是提高焊接结构疲劳性能的最有效的焊后处理技术之一。UIT旨在通过塑性变形焊接趾引入有利于疲劳的压应力,并通过修改局部焊接几何形状来减少应力集中。本研究采用有限元方法对焊接过程进行了三维建模和仿真,并对焊接过程进行了数值模拟,预测了对接焊缝和T形焊缝的残余应力分布。对比了焊接状态下和UIT处理条件下的预测数值结果,表明焊缝残余应力得到改善。对比结果表明,该方法在焊接结构的疲劳设计中具有潜在的应用价值,可以实现结构的轻量化和轻量化。
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