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Microstructure and mechanical properties of high-strength steel welding consumables with a minimum yield strength of 1100 MPa

机译:高强度钢焊接耗材的微观结构和力学性能,最小屈服强度为1100 MPa

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摘要

Welded high-strength steel components have great potential for use in lightweight constructions or highly loaded structures. Welding of steels with a yield strength of more than 1100 MPa is particularly challenging because of the toughness requirements for the weld metal. Currently, a new generation of welding consumables with a minimum yield strength of 1100 MPa has been developed. Based on electron backscatter diffraction and atom probe tomography, a concept for toughening and strengthening of all-weld metal samples was deployed. Starting from a martensitic all-weld metal sample with an approximate yield strength of 1000 MPa, a reduction in manganese and silicon content resulted in a refined microstructure with a lower prior austenite grain size and effective grain size. Furthermore, a higher average grain boundary misorientation was measured, which influences the toughness positively. An addition of vanadium caused the formation of vanadium-rich clusters, which increased the strength of the all-weld metal significantly. With a combination of these two mechanisms, it was possible to produce an all-weld metal sample with the required yield strength of more than 1100 MPa and an acceptable toughness.
机译:焊接的高强度钢组件具有很大的用途,可用于轻质结构或高负载结构。由于对焊接金属的韧性要求,钢材焊接钢材具有超过1100MPa的钢材尤其具有挑战性。目前,已经开发出具有1100MPa的最小屈服强度的新一代焊接耗材。基于电子反向散射衍射和原子探头层析造影,展开了一种加强和强化全焊金属样品的概念。从马氏体全焊接金属样品开始,含量强度为1000MPa,锰和硅含量的还原导致精细的微观结构,具有较低的先前奥氏体晶粒尺寸和有效的晶粒尺寸。此外,测量了较高的平均晶界界限,其积极影响韧性。添加钒导致富含钒的簇的形成,这显着增加了全焊接金属的强度。通过这两种机制的组合,可以生产屈服强度的全焊接金属样品超过1100MPa和可接受的韧性。

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