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Microstructure and dynamic tensile behavior of DP600 dual phase steel joint by laser welding

机译:DP600双相钢激光焊接接头的组织和动态拉伸性能

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摘要

Dual phase (DP) steels have been widely used in the automotive industry to reduce vehicle weight and improve car safety. In such applications welding and joining have to be involved, which would lead to a localized change of the microstructure and property, and create potential safety and reliable issues under dynamic loading. The aim of the present study is to examine the rate-dependent mechanical properties, deformation and fracture behavior of DP600 steel and its welded joint (WJ) produced by Nd:YAG laser welding over a wide range of strain rates (0.001-1133 s~(-1)). Laser welding results in not only significant microhardness increase in the fusion zone (FZ) and inner heat-affected zone (HAZ), but also the formation of a softened zone in the outer HAZ. The yield strength (YS) of the DP600 steel increases and the ultimate tensile strength (UTS) remains almost unchanged, but the ductility decreases after welding. The DP600 base metal (BM) and WJ are of positive strain rate sensitivity and show similar stress-strain response at all studied strain rates. The enhanced ductility at strain rates ranging from 1 to 100 s~(-1) is attributed to the retardation of the propagation of plastic strain localization due to the positive strain rate sensitivity and the thermal softening caused by deformation induced adiabatic temperature rise during dynamic tensile deformation. The tensile failure occurs in the inner HAZ of the joint and the distance of failure location from the weld centerline decreases with increasing strain rate. The mechanism for the changing failure location can be related to the different strain rate dependence of the plastic deformation behavior of the microstructures in various regions across the joint. The DP600 WJ absorbs more energy over the whole measured strain rates than that of the BM due to the higher strength at the same strain when the deformation only up to 10% is considered.
机译:双相(DP)钢已广泛用于汽车行业,以减轻汽车重量并提高汽车安全性。在这种应用中,必须进行焊接和连接,这将导致微观结构和性能的局部变化,并在动态载荷下产生潜在的安全性和可靠性问题。本研究的目的是研究Nd:YAG激光焊接在很宽的应变速率范围(0.001-1133 s〜)下DP600钢及其焊接接头(WJ)的速率依赖性机械性能,变形和断裂行为(-1))。激光焊接不仅会导致熔合区(FZ)和内部热影响区(HAZ)的显微硬度显着提高,而且还会在外部HAZ中形成软化区。 DP600钢的屈服强度(YS)增加,极限抗拉强度(UTS)几乎保持不变,但焊接后延展性降低。 DP600贱金属(BM)和WJ具有正应变速率敏感性,并且在所有研究的应变速率下均显示出相似的应力应变响应。在1到100 s〜(-1)应变速率下增强的延展性归因于正应变速率敏感性和动态拉伸过程中由变形引起的绝热温度升高引起的热软化,从而延缓了塑性应变局部化的传播。形变。拉伸失效发生在接头的内部热影响区,失效点到焊接中心线的距离随着应变率的增加而减小。改变失效位置的机制可能与整个接头各个区域中微结构塑性变形行为的不同应变率依赖性有关。当考虑仅变形至多10%时,由于在相同应变下具有更高的强度,因此在整个测得的应变速率下,DP600 WJ吸收的能量比BM更大。

著录项

  • 来源
    《Materials Science and Engineering》 |2014年第31期|17-25|共9页
  • 作者单位

    College of Science, Northeastern University, No. 11, Lane 3, WenHua Road, HePing District, Shenyang 110819, China;

    Key Laboratory for Anisotropy and Texture of Materials, Ministry of Education, Northeastern University, Shenyang 110819, China;

    College of Science, Northeastern University, No. 11, Lane 3, WenHua Road, HePing District, Shenyang 110819, China;

    College of Science, Northeastern University, No. 11, Lane 3, WenHua Road, HePing District, Shenyang 110819, China;

    College of Science, Northeastern University, No. 11, Lane 3, WenHua Road, HePing District, Shenyang 110819, China;

    College of Science, Northeastern University, No. 11, Lane 3, WenHua Road, HePing District, Shenyang 110819, China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Dual phase (DP) steel; Laser welding; Dynamic tensile; Microstructure; Strain rate;

    机译:双相(DP)钢;激光焊接;动态拉伸微观结构应变率;

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