通过高速激光熔覆在薄壁管上形成镍合金粉末涂层

IF 0.4 4区 物理与天体物理 Q4 PHYSICS, NUCLEAR
E. S. Ermilova, I. R. Ovsyankin, A. A. Gavrikov, V. N. Petrovskiy, P. S. Dzhumaev, V. I. Polsky
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引用次数: 0

摘要

采用高速激光熔覆技术在12Kh18N10T薄壁不锈钢管表面沉积了1350-00镍合金粉末涂层。在机器人复合体上使用10千瓦镱光纤激光器的连续波辐射进行包层。确定了用于弗劳恩霍夫喷嘴的气体-粉末射流的形状。评价了激光辐照功率和供粉量对涂层结构的影响。对获得的样品进行了金相研究。结果表明,在最佳条件下,激光熔覆提供了一种几乎无孔的涂层,对基材的渗透最小,确保了冶金熔接。根据x射线光谱显微分析,沉积涂层的化学成分与使用粉末的化学成分几乎没有区别。根据沉积模式的不同,沉积层的厚度可在一次100-300µm范围内调整。熔线结构一致,熔覆过程中热输入均匀性高。根据沉积模式的不同,衬底材料中热影响区域的大小在50-200µm之间变化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Formation of a Nickel Alloy Powder Coating on Thin-Walled Tubes by High-Speed Laser Cladding

Formation of a Nickel Alloy Powder Coating on Thin-Walled Tubes by High-Speed Laser Cladding

A 1350-00 nickel alloy powder coating has been deposited on thin-walled 12Kh18N10T stainless steel tubes by high-speed laser cladding. Cladding has been performed using cw radiation from a 10-kW ytterbium fiber laser on a robotic complex. The shapes of the gas–powder jet for Fraunhofer nozzles have been determined. The influence of the laser radiation power and the amount of supplied powder on the structure of the coatings obtained has been evaluated. Metallographic studies of the obtained samples have been carried out. It has been shown that laser cladding under optimal conditions provides an almost nonporous coating with minimal penetration of the base material, ensuring metallurgical fusion. According to the X-ray spectral microanalysis, the chemical composition of the deposited coating hardly differs from the chemical composition of the used powder. The thickness of the deposited layer is adjusted within 100–300 µm in one pass, depending on the deposition modes. The fusion line is identical in structure, which shows a high uniformity of heat input during cladding. The size of the region of thermal influence in the substrate material varies within 50–200 µm, depending on the deposition modes.

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来源期刊
Physics of Atomic Nuclei
Physics of Atomic Nuclei 物理-物理:核物理
CiteScore
0.60
自引率
25.00%
发文量
56
审稿时长
3-6 weeks
期刊介绍: Physics of Atomic Nuclei is a journal that covers experimental and theoretical studies of nuclear physics: nuclear structure, spectra, and properties; radiation, fission, and nuclear reactions induced by photons, leptons, hadrons, and nuclei; fundamental interactions and symmetries; hadrons (with light, strange, charm, and bottom quarks); particle collisions at high and superhigh energies; gauge and unified quantum field theories, quark models, supersymmetry and supergravity, astrophysics and cosmology.
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