首页> 外文期刊>Metallurgical and Materials Transactions, A. Physical Metallurgy and Materials Science >Fracture Mechanism and Toughness of the Welding Heat-Affected Zone in Structural Steel under Static and Dynamic Loading
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Fracture Mechanism and Toughness of the Welding Heat-Affected Zone in Structural Steel under Static and Dynamic Loading

机译:静态和动态载荷下结构钢焊接热影响区的断裂机理和韧性

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摘要

Due to the influence of the welding thermal cycle, the toughness of structural steel generally degenerates. Recently, the intercritically reheated coarse-grained heat-affected zone (IC CG HAZ) was found to demonstrate the worst toughness in welded joint, which was associated with its fracture mechanism. In this article, two IC CG HAZs of a structural steel were prepared by welding thermal-cycle simulation techniques. For the two IC CG HAZs, the static and dynamic fracture toughness were evaluated; the fracture mechanism was also studied. Under both static and dynamic loading, cracks in the IC CG HAZ were found to initiate at the intersection of bainitic ferrite #alpha#_B~0 packets with different orientations, followed by propagation in cleavage. In some crack propagation regions, adjacent cleavage facets are connected by shear, thus producing dimple zones. Though the brittle fracture initiation mechanism remains unchanged, the cleavage facet size, the proportion of the dimple zones between facets, and the distance from the cracking initiation site to the crack tip vary with loading speed and welding conditions. These changes were found to be related to the variations caused by strain rate and welding conditions in fracture toughness for the IC CG HAZs.
机译:由于焊接热循环的影响,结构钢的韧性通常会降低。最近,发现临界间再加热的粗晶粒热影响区(IC CG HAZ)在焊接接头中表现出最差的韧性,这与其断裂机理有关。在本文中,通过焊接热循环模拟技术制备了两种结构钢的IC CG HAZ。对于这两种IC CG热影响区,评估了其静态和动态断裂韧性。还研究了断裂机理。在静态和动态载荷下,都发现IC CG HAZ中的裂纹在具有不同方向的贝氏体铁素体#alpha#_B〜0包的相交处开始,然后在分裂中扩展。在某些裂纹扩展区域,相邻的解理面通过剪切力相连,从而形成了凹坑区域。尽管脆性断裂的起爆机理保持不变,但开裂面的大小,小面之间的凹坑区域的比例以及从开裂起点到裂纹尖端的距离随加载速度和焊接条件而变化。发现这些变化与IC CG HAZ的应变率和焊接条件引起的断裂韧性变化有关。

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