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微观结构和化学成分对激光硼化蒙乃尔400合金显微硬度和磨损性能的影响

Influence of Microstructure and Chemical Composition on Microhardness and Wear Properties of Laser Borided Monel 400.

作者信息

Kukliński Mateusz, Bartkowska Aneta, Przestacki Damian, Kinal Grzegorz

机构信息

Faculty of Mechanical Engineering, Institute of Mechanical Technology, Poznan University of Technology, ul. Piotrowo 3, 61-138 Poznan, Poland.

Faculty of Materials Engineering and Technical Physics, Institute of Materials Science and Engineering, Poznan University of Technology, ul. Jana Pawła II 24, 61-138 Poznan, Poland.

出版信息

Materials (Basel). 2020 Dec 16;13(24):5757. doi: 10.3390/ma13245757.

Abstract

In this study, wear properties of Monel 400 after laser alloying with boron are described. Surfaces were prepared by covering them with boron paste layers of two different thicknesses (100 µm and 200 μm) and re-melting using diode laser. Laser beam power density was equal to 178.3 kW/cm. Two laser beam scanning velocities were chosen for the process: 5 m/min and 50 m/min. Surfaces alloyed with boron were investigated in terms of wear resistance, and the surface of untreated Monel 400 was examined for comparison. Wear tests were performed using counterspecimen made from steel 100Cr6 and water as a lubricant. Both quantitative and qualitative analysis of surfaces after wear test are described in this paper. Additionally, microstructures and properties of obtained laser alloyed surfaces are presented. It was found that the wear resistance increased from four to tens of times, depending on parameters of the laser boriding process. The wear mechanism was mainly adhesive for surfaces alloyed with initial boron layer 100 µm thick and evolves to abrasive with increasing boron content and laser beam scanning velocity. Iron particles detached from counterspecimens were detected on each borided surface after the wear test, and it was found that the harder the surface the less built-ups are present. Moreover, adhered iron particles oxidized during the wear test.

摘要

本研究描述了蒙乃尔400合金在与硼进行激光合金化处理后的磨损性能。通过用两种不同厚度(100微米和200微米)的硼膏层覆盖表面并使用二极管激光进行重熔来制备表面。激光束功率密度等于178.3千瓦/平方厘米。该工艺选择了两种激光束扫描速度:5米/分钟和50米/分钟。对硼合金化表面的耐磨性进行了研究,并对未处理的蒙乃尔400表面进行了检查以作比较。磨损试验使用由100Cr6钢制成的配对试样并以水作为润滑剂进行。本文描述了磨损试验后表面的定量和定性分析。此外,还展示了所获得的激光合金化表面的微观结构和性能。结果发现,根据激光硼化工艺的参数,耐磨性提高了4到10倍。对于初始硼层厚度为100微米的合金化表面,磨损机制主要是粘着磨损,随着硼含量和激光束扫描速度的增加,磨损机制演变为磨料磨损。磨损试验后,在每个硼化表面上都检测到了从配对试样上脱落的铁颗粒,并且发现表面越硬,堆积物越少。此外,粘着的铁颗粒在磨损试验过程中发生了氧化。

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