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Surface Treatment of 45 Steels by Plasma Beam Alloying and Plasma Surface Quenching

机译:等离子束合金化和等离子表面淬火对45种钢的表面处理

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Plasma beam is currently advisable and advantageous in surface modification for several reasons; for instants, high energy, portability and low cost. In this study, plasma beam was employed to deposit pre-paste, and also used for surface quenching. The results are shown that a uniformed harden layer free of crack and porosities with a thickness of 1.8-2.2mm can be produced by both two methods. After plasma beam alloying, the overlayer with obvious two interfaces can achieve a maximum hardness of 1100HV0.2. This improvement is the mainly contribution not only by land-like TiC reinforced particles and Fe2.5 Tio.5O4, a product of reaction between the pre-paste and molten matrix, with dispersive distribution at the surface, but also alloying elements enriched at the top of molten pool. The experiment suggested that the hardness of the surface was also highly affected by the parameters of plasma beam process alloying; namely, the higher velocity plasma beam moves and the more TiC particles contained, the higher hardness can be obtained. In contrast with the former process, after plasma surface quenching, the overlayer with one interface has a maximum hardness of 600HV0.2.
机译:目前,由于多种原因,等离子束是可取的,并且在表面改性方面具有优势。瞬间,高能量,便携性和低成本。在这项研究中,等离子束用于沉积预糊剂,也用于表面淬火。结果表明,两种方法均可生产厚度为1.8-2.2mm的无裂纹和孔隙的均匀硬化层。等离子束合金化后,具有明显两个界面的覆盖层可达到1100HV0.2的最大硬度。这种改进的主要贡献不仅在于陆地状的TiC增强颗粒和Fe2.5 Tio0.5O4(预糊与熔融基体之间的反应产物,在表面具有分散分布),而且还在于合金元素富集在表面。熔池的顶部。实验表明,等离子束工艺合金化参数对表面的硬度也有很大的影响。即,等离子束移动的速度越高,并且所含的TiC颗粒越多,则可以获得越高的硬度。与前一种方法相反,等离子表面淬火后,具有一个界面的覆盖层具有600HV0.2的最大硬度。

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