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Numerical analyses of strength mis-match effect on local stresses for ideally plastic materials

机译:理想塑性材料强度失配对局部应力影响的数值分析

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摘要

The effect of strength mis-matched welded joints on the local stresses in the neighbourhood of a crack has been investigated, in the context of ideally plastic materials, using the finite element method and slip line field analysis. Several key parameters affecting the local stresses have been identified: degree of strength mis-match, M, slenderness of the weld, (W - a)/H, and crack location within the weld. Loading geometry effects have been considered by investigating tension and bending specimens. The analyses were performed for plane strain and plane stress conditions. It is found that, for the case when the crack locates within the weld metal, the crack tip stress triaxiality depends not only on M but also on (W - a)/H. The effect of (W - a)/H is worth noting, as its effect on the crack tip stress triaxiality is restricted to certain ranges of (W - a)/H, which in turn depend on M, geometry and loading. For an interface crack, the stress triaxiality at the softer side is higher than that for a crack in a specimen wholly made of the softer material; the reverse is true for the harder side. This explains the ductile failure behaviour of cracks observed in experiments: the crack path tends to deviate into the softer material in spite of its higher toughness. Another notable point is that, under sufficiently high under-matching conditions, a second peak stress ahead of and remote from the crack tip may occur, the magnitude of which depends on M and (W - a)/H. Present findings are believed to be vital for design and defect assessment of welded joints with conventional welding as well as advanced welding techniques.
机译:在理想的塑料材料的情况下,使用有限元方法和滑移线场分析,研究了强度不匹配的焊接接头对裂纹附近局部应力的影响。已经确定了影响局部应力的几个关键参数:强度不匹配的程度,M,焊缝的细长度,(W-a)/ H以及焊缝中的裂纹位置。通过研究拉伸和弯曲试样已经考虑了载荷几何效应。对平面应变和平面应力条件进行了分析。发现,对于裂纹位于焊接金属内的情况,裂纹尖端应力三轴性不仅取决于M,而且取决于(W-a)/ H。 (W-a)/ H的影响值得注意,因为它对裂纹尖端应力三轴性的影响被限制在(W-a)/ H的特定范围内,而这又取决于M,几何形状和载荷。对于界面裂纹,较软的一侧的应力三轴性要比完全由较软的材料制成的试样的裂纹的三轴性高。反之亦然。这解释了在实验中观察到的裂纹的延性破坏行为:尽管裂纹路径具有较高的韧性,但仍倾向于偏向较软的材料。另一个值得注意的点是,在足够高的不匹配条件下,可能会出现裂纹尖端前方和远离裂纹尖端的第二峰值应力,其强度取决于M和(W-a)/ H。据信,目前的发现对于采用传统焊接以及先进的焊接技术进行焊接接头的设计和缺陷评估至关重要。

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