不锈钢深熔远程激光焊接中激光-羽流相互作用

IF 5 2区 物理与天体物理 Q1 OPTICS
Johannes Wahl , Christian Frey , John Powell , Felix Zaiß , Michael Haas , Simon Olschok , Uwe Reisgen , Christian Hagenlocher , Thomas Graf
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引用次数: 0

摘要

在深熔激光焊接中,金属蒸气的气体羽流从锁孔中喷射出来。然后,这种蒸汽的冷却导致冷凝,并在焊接区上方和周围形成颗粒云。蒸汽羽流和粒子云通过相锋的散射、吸收和变形与入射激光束相互作用。这种复杂的动态相互作用可能对焊接结果产生不利影响,目前尚未完全了解。这是特别相关的焊接应用,其中蒸汽羽流不清除与保护气体或交叉射流。本文通过分析焊接不锈钢时光束-羽流相互作用区产生的热发射和散射激光,对光束-羽流相互作用进行了研究。使用了带滤光片的高速摄像机和光谱仪进行分析。此外,还记录了纹影和阴影图像,以可视化光束-羽相互作用。区分了光束-羽相互作用的不同区域。在激光束焦点附近,可以忽略不计的凝聚态或固体物质散射激光束,在激光束内发现焦性。热金属蒸气的热辐射是该地区的主要辐射源。在离焦点较远的地方,散射激光是主要的发射源,而热发射变得可以忽略不计。这两个区域被一个多相区连接起来,该多相区可以通过其热发射和激光散射来观察,其中包含热金属蒸汽和颗粒。这里提出的研究为蒸汽羽流和粒子云之间的相互作用提供了有价值的见解。在未来,这些知识可以用来避免或补偿在激光深熔焊接过程中发生的相关不利影响,并作为模拟光束-羽相互作用的基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Laser-plume interactions in deep-penetration remote laser welding of stainless steel
In deep-penetration laser welding a gaseous plume of metal vapor is ejected from the keyhole. Cooling of this vapor then leads to condensation and the formation of a particle cloud above and around the welding zone. The vapor plume and particle cloud interact with the incident laser beam by scattering, absorption, and deformation of the phase front. This complex and dynamic interaction can have detrimental effects on the welding result and is not yet fully understood. This is particularly relevant for welding applications where the vapor plume is not removed with shielding gas or a cross-jet. The present paper reports on investigations into the beam-plume interactions by analyzing the thermal emission and scattered laser light from the interaction zone while welding stainless steel. A high-speed camera with optical filters and a spectrometer were used for this analysis. In addition, Schlieren and shadow images were recorded to visualize the beam-plume interaction. Different zones of beam-plume interaction were distinguished. Near the laser beam focus, a negligible amount of condensed or solid material scattering the laser beam was found within the laser beam caustic. Instead, the thermal emission of the hot metal vapor was found to be the main source of emission in this area. At greater distances from the focus, the scattered laser light was the dominant emission source, while the thermal emission became negligible. These two zones were found to be connected by a multi-phase zone, which could be observed by its thermal emission and the scattering of the laser light, which contained both hot metal vapor and particles. The investigations presented here provide valuable insights into the interactions between the vapor plume and the particle cloud. In the future, this knowledge can be used to avoid or compensate for related adverse effects that occur during laser deep penetration welding, and as a basis for simulations of the beam-plume interaction.
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来源期刊
CiteScore
8.50
自引率
10.00%
发文量
1060
审稿时长
3.4 months
期刊介绍: Optics & Laser Technology aims to provide a vehicle for the publication of a broad range of high quality research and review papers in those fields of scientific and engineering research appertaining to the development and application of the technology of optics and lasers. Papers describing original work in these areas are submitted to rigorous refereeing prior to acceptance for publication. The scope of Optics & Laser Technology encompasses, but is not restricted to, the following areas: •development in all types of lasers •developments in optoelectronic devices and photonics •developments in new photonics and optical concepts •developments in conventional optics, optical instruments and components •techniques of optical metrology, including interferometry and optical fibre sensors •LIDAR and other non-contact optical measurement techniques, including optical methods in heat and fluid flow •applications of lasers to materials processing, optical NDT display (including holography) and optical communication •research and development in the field of laser safety including studies of hazards resulting from the applications of lasers (laser safety, hazards of laser fume) •developments in optical computing and optical information processing •developments in new optical materials •developments in new optical characterization methods and techniques •developments in quantum optics •developments in light assisted micro and nanofabrication methods and techniques •developments in nanophotonics and biophotonics •developments in imaging processing and systems
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