激光焊接中熔池形状的控制

IF 2.4 4区 材料科学 Q2 METALLURGY & METALLURGICAL ENGINEERING
Wojciech Suder, Xin Chen, David Rico Sierra, Guangyu Chen, James Wainwright, Kuladeep Rajamudili, Goncalo Rodrigues Pardal, Stewart Williams
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引用次数: 0

摘要

在激光焊接中,实现高生产率和高精度是一项相对容易的任务;然而,如何实现无缺陷的完美焊接却并不总是显而易见的。局部激光能量会产生具有陡峭热梯度的狭窄熔池,再加上蒸汽羽流的搅动,有可能导致许多不稳定和缺陷。在过去的几年中,已经有许多技术被证明可以提高激光焊接的质量和公差,例如摆动焊接或混合工艺,但要充分发挥激光的潜力,我们需要了解如何调整激光能量以满足工艺和材料的要求。了解和控制熔体流动是激光焊接最重要的方面之一。在这项工作中,我们讨论了一项广泛研究计划的成果,该计划的重点是了解激光焊接中的熔池动力学和焊珠形状控制。在计算流体动力学建模的支持下,仪器实验的结果让人们深入了解了熔池形成、流动方向、原料熔化以及激光相互作用时材料中形成缺陷的可能性等基本方面。这项工作有助于更好地理解现有工艺,并开发出一系列新的工艺制度,与标准激光焊接相比,这些制度具有更高的工艺稳定性、更高的效率和生产率。文中展示了几个实例,包括超稳定的锁孔焊接和摆动焊接以及高效的激光焊丝熔化。此外,作者还介绍了一种新的焊接工艺,它源于通过动态光束塑形控制熔池流动和形状的新概念。事实证明,这种新工艺在焊接、熔覆和修复应用中具有许多潜在优势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Control of meltpool shape in laser welding

Control of meltpool shape in laser welding

In laser welding, the achievement of high productivity and precision is a relatively easy task; however, it is not always obvious how to achieve sound welds without defects. The localised laser energy promotes narrow meltpools with steep thermal gradients, additionally agitated by the vapour plume, which can potentially lead to many instabilities and defects. In the past years, there have been many techniques demonstrated on how to improve the quality and tolerance of laser welding, such as wobble welding or hybrid processes, but to utilise the full potential of lasers, we need to understand how to tailor the laser energy to meet the process and material requirements. Understanding and controlling the melt flow is one of the most important aspects in laser welding. In this work, the outcome of an extensive research programme focused on the understanding of meltpool dynamics and control of bead shape in laser welding is discussed. The results of instrumented experimentation, supported by computational fluid dynamic modelling, give insight into the fundamental aspects of meltpool formation, flow direction, feedstock melting and the likelihood of defect formation in the material upon laser interaction. The work contributes to a better understanding of the existing processes, as well as the development of a new range of process regimes with higher process stability, improved efficiency and higher productivity than standard laser welding. Several examples including ultra-stable keyhole welding and wobble welding and a highly efficient laser wire melting are demonstrated. In addition, the authors present a new welding process, derived from a new concept of the meltpool flow and shape control by dynamic beam shaping. The new process has proven to have many potential advantages in welding, cladding and repair applications.

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来源期刊
Welding in the World
Welding in the World METALLURGY & METALLURGICAL ENGINEERING-
CiteScore
4.20
自引率
14.30%
发文量
181
审稿时长
6-12 weeks
期刊介绍: The journal Welding in the World publishes authoritative papers on every aspect of materials joining, including welding, brazing, soldering, cutting, thermal spraying and allied joining and fabrication techniques.
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