激光熔化切割:气体动力学和切割边缘形貌之间缺失的一环

IF 1.7 4区 工程技术 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY
Madlen Borkmann, Achim Mahrle, Andreas Wetzig
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引用次数: 0

摘要

在激光切割中,气体流动对熔体去除和切口形成的基本作用被普遍接受。然而,除了这种模糊的理解之外,潜在的物理机制尚未完全理解。特别是,关于气体和熔体之间的动量和热传递的详细数据很少被报道。本研究基于实验、理论和数值相结合的方法,从根本上解决了切割气体与切口表面(熔膜表面)之间的局部相互作用。分析了典型的固体激光切边的表面结构特征以及气体流动对整体和局部熔体运动的基本影响。在这里,微米范围内的明显结构表明靠近壁面的涡状气体结构的影响。用半经验方程和边界层理论的基本结果进行了气体边界层的理论研究。结果表明,边界层处于层流和湍流之间的过渡状态,局部流动分离和激波-边界层相互作用主要诱发空间周期和准平稳不稳定模式。改进的切割气体流动数值模型证实了理论结果,并与实验切割边缘具有良好的一致性,再现了相关的不稳定模式,量化了气体与熔体之间的局部动量和传热分布。通过对其基本物理机制的了解,提出了改善熔切性能的有希望的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Laser fusion cutting: The missing link between gas dynamics and cut edge topography
In laser cutting, the fundamental role of the gas flow for melt removal and kerf formation is generally accepted. Beyond this vague understanding, however, the underlying physical mechanisms are not yet fully understood. In particular, detailed data concerning the momentum and heat transfer between the gas and melt have seldom been reported. This study addresses the local interactions between the cutting gas and kerf surface (melt film surface) in a fundamental way based on a combined experimental, theoretical, and numerical approach. Typical solid-state laser cut edges are analyzed considering the characteristic surface structures and the basic influences of the gas flow on the global and local melt movement. Here, apparent structures in the micrometer range indicate the effect of vortical gas structures close to the wall. Theoretical investigation of the gas boundary layer is conducted by semiempirical equations and the transfer of basic results from the boundary layer theory. It is shown that the boundary layer is in transition between the laminar and turbulent flow, and local flow separations and shock-boundary layer interactions primarily induce spatially periodic and quasistationary instability modes. An improved numerical model of the cutting gas flow confirms the theoretical results and exhibits good agreement with experimental cut edges, reproducing relevant instability modes and quantifying the local momentum and heat transfer distributions between the gas and melt. With the knowledge gained about the underlying physical mechanisms, promising approaches for improvements of the fusion cutting performance are proposed.
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来源期刊
CiteScore
3.60
自引率
9.50%
发文量
125
审稿时长
>12 weeks
期刊介绍: The Journal of Laser Applications (JLA) is the scientific platform of the Laser Institute of America (LIA) and is published in cooperation with AIP Publishing. The high-quality articles cover a broad range from fundamental and applied research and development to industrial applications. Therefore, JLA is a reflection of the state-of-R&D in photonic production, sensing and measurement as well as Laser safety. The following international and well known first-class scientists serve as allocated Editors in 9 new categories: High Precision Materials Processing with Ultrafast Lasers Laser Additive Manufacturing High Power Materials Processing with High Brightness Lasers Emerging Applications of Laser Technologies in High-performance/Multi-function Materials and Structures Surface Modification Lasers in Nanomanufacturing / Nanophotonics & Thin Film Technology Spectroscopy / Imaging / Diagnostics / Measurements Laser Systems and Markets Medical Applications & Safety Thermal Transportation Nanomaterials and Nanoprocessing Laser applications in Microelectronics.
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