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Dynamic characteristics and mechanisms of compressible metallic vapor plume behaviors in transient keyhole during deep penetration fiber laser welding

机译:深熔光纤激光焊接瞬态小孔中可压缩金属蒸气羽流动力学特性及机理

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摘要

The compressible metallic vapor plume or plasma plume behaviors in the keyhole during deep penetration laser welding have significant effects on the joint quality. However, these behaviors and their responses to process parameter variations have not been well understood. In this paper, we first systematically study the dynamic characteristics and mechanisms of compressible metallic vapor plume behaviors in transient keyhole during fiber laser welding of 304 stainless steels based on a multiple timescale multiphase model. The time-dependent temperature, pressure, velocity and Mach number distributions of vapor plume under different process parameters are theoretically predicted. It is found that the distributions of the main physical characteristics of vapor plume such as pressure, velocity as well as Mach number in keyhole are usually highly uneven and highly time dependent. The peak difference of the velocity, pressure, temperature and Mach number of the vapor plume in a keyhole could be greater than 200 m/s, 20 kPa, 1000 K and 0.6 Mach, respectively. The vapor plume characteristics in a transient keyhole can experience significant changes within several hundreds of nanoseconds. The formation mechanisms of these dynamic characteristics are mainly due to the mesoscale keyhole hump (sized in several tens of microns) dynamics. It is also demonstrated that it is possible to suppress the oscillations of compressible vapor plume in the keyhole by improving the keyhole stability through decreasing the heat input. However, stabilizing the keyhole could only weaken, but not eliminate, the observed highly uneven and transient characteristics. This finding may pose new challenges for accurate experimental measurements of vapor plume induced by laser welding.
机译:在深熔激光焊接过程中,锁孔中可压缩的金属蒸气羽流或等离子羽流行为对接头质量有重要影响。但是,这些行为及其对过程参数变化的响应尚未得到很好的理解。本文首先基于多时标多相模型,系统地研究了304不锈钢光纤激光焊接过程中瞬态小孔中可压缩金属蒸气羽流的动力学特性和机理。理论上预测了不同工艺参数下蒸汽羽流随时间的温度,压力,速度和马赫数分布。结果发现,蒸汽羽流的主要物理特征(如压力,速度以及锁孔中的马赫数)的分布通常高度不均匀且高度依赖时间。钥匙孔中蒸气羽流的速度,压力,温度和马赫数的峰值差可能分别大于200 m / s,20 kPa,1000 K和0.6 Mach。瞬态小孔中的蒸气羽流特性可能会在几百纳秒内发生显着变化。这些动力学特性的形成机理主要是由于中等尺度的锁孔驼峰(尺寸为几十微米)动力学所致。还证明了通过减少热量输入来提高钥匙孔稳定性,可以抑制钥匙孔中可压缩蒸气羽流的振荡。但是,稳定锁孔只能减弱而不是消除观察到的高度不均匀和瞬态特性。这一发现可能对激光焊接引起的蒸汽羽流的准确实验测量提出新的挑战。

著录项

  • 来源
    《Applied Physics》 |2016年第7期|702.1-702.18|共18页
  • 作者单位

    State Key Laboratory of Material Processing and Die & Mould Technology, Huazhong University of Science and Technology, Wuhan, China;

    State Key Laboratory of Digital Manufacturing Equipment and Technology, Huazhong University of Science and Technology, Wuhan, China;

    State Key Laboratory of Material Processing and Die & Mould Technology, Huazhong University of Science and Technology, Wuhan, China;

    State Key Laboratory of Material Processing and Die & Mould Technology, Huazhong University of Science and Technology, Wuhan, China;

    Science and Technology on Power Beam Processes Laboratory, AVIC Beijing Aeronautical Manufacturing Technology Research Institute, Beijing, China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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