不同热输入下 945 号造船钢激光-MAG 混合焊接 T 形接头的微观结构和动态断裂行为

Jilong Guo, Lilong Zhou, Yong Zhao, Feiyun Wang, Juan Fu, Xueyan Yang, Yinjun Liu
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引用次数: 0

摘要

945 号造船钢焊接 T 型接头广泛用于板梁连接,其冲击韧性直接影响船用结构部件的使用寿命。然而,目前的研究工作主要集中在焊接 T 型接头的静态力学性能上,很少有学者研究焊接 T 型接头在动态载荷条件下的冲击性能。本文利用激光-MAG 混合焊接 945 号造船钢 T 型接头,研究了热输入对焊接 T 型接头微观结构演变和动态力学性能的影响。结果表明,热输入的增加会导致冷却速度的降低,从而促进焊缝金属中板条马氏体的形成以及粗晶粒热影响区(HAZ)中粒状贝氏体和板条贝氏体的形成。同时,较高的热输入增加了热影响区的宽度并导致晶粒粗化,当热输入从 12.1 kJ/cm 上升到 14.6 kJ/cm 时,平均晶粒面积增加了 298.9%。马氏体含量和形态的变化导致焊接 T 型接头的显微硬度降低。热影响区成为最易受动态冲击载荷影响的区域,较高的热输入导致韧性断裂。与高热输入相比,低热输入的落锤加速度降低了 34.0%,最大位移增加了 45.9%,断裂能增加了 43.1%。落锤冲击指标的变化进一步说明,热输入较低的焊接 T 型接头有利于提高冲击韧性。
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Microstructure and dynamic fracture behaviors of laser-MAG hybrid welded T-joints of 945 shipbuilding steel with different heat inputs
Welded T-joints of 945 shipbuilding steel are widely used in plate-beam connections, and their impact toughness directly affects the service life of shipboard structural components. However, current research efforts have primarily focused on the static mechanical properties of welded T-joints, with few scholars investigating the impact properties of welded T-joints under dynamic loading conditions. In this paper, laser-MAG hybrid welding of 945 shipbuilding steel T-joints is utilized to study the effects of heat input on the microstructure evolution and dynamic mechanical properties of welded T-joints. The results show that the increase in heat input results in a decrease in the cooling rate, which promotes the formation of lath martensite in weld metal and the formation of granular and lath bainite in coarse grain heat affected zone (HAZ). Concurrently, the higher heat input increases the width of the HAZ and leads to grain coarsening, resulting in a 298.9% increase in average grain area when the heat input rises from 12.1 to 14.6 kJ/cm. The changes in martensite content and morphology result in a reduction in the microhardness of welded T-joints. The HAZ becomes the most vulnerable region to dynamic impact loading, and the higher heat input leads to ductile fracture. Compared to high heat input, the drop hammer acceleration decreases by 34.0%, the maximum displacement increases by 45.9%, and the fracture energy increases by 43.1%, for low heat input. The changes in the drop hammer impact metrics further illustrate that welded T-joints with lower heat input are favorable for improving impact toughness.
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