纯镍基体中crmnnfeconi高熵合金或含WC硬质颗粒复合粉末冷喷涂涂层的冲蚀行为

Giacomo Cappelli, Shuo Yin, R. Lupoi
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引用次数: 0

摘要

研究了两种不同涂层材料在氧化铝颗粒撞击下的性能。采用冷喷涂法,以氮气为工艺气体,在2205双相不锈钢基体上喷涂crmnnfeconi和WC-Ni涂层。在基体和高熵合金涂层之间,采用316不锈钢层间涂层。通过扫描电镜(SEM)检测,证实WC- ni复合镀层中存在WC颗粒。沉积后,涂层在空气炉中进行热处理。采用x射线衍射分析方法研究了热处理保温时间对WC-Ni镀层的影响。WC/Ni- Ni涂层和高熵合金涂层的热处理峰值温度分别为600℃和550℃。测定了镀层显微硬度和孔隙率体积分数。HEA涂层的硬度优于WC/Ni-Ni涂层,但孔隙率更高。然后使用氧化铝颗粒进行不同冲击角度(30°,60°和90°)的侵蚀实验。为了比较不同的材料,计算了每个目标试样的平均侵蚀值。WC/Ni-Ni涂层在60°的冲击角下最有效。另一方面,HEA涂层表现出更大的抗30°和90°冲击角的能力。利用扫描电镜对侵蚀区进行了检查,确定了侵蚀的主要机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Erosion Behaviour of Cold Sprayed Coatings Made of CrMnFeCoNi High-Entropy Alloy or Composite Powders Containing WC Hard Particles in a Pure Nickel Matrix
The performance of two distinct coating materials under alumina particle impingement was tested in this study. CrMnFeCoNi and WC-Ni coatings were applied to 2205 duplex stainless steel substrates using cold spray method with nitrogen as the process gas. In between the substrate and the high entropy alloy coating, an interlayer coating of 316 stainless steel was used. The presence of WC particles in the WC-Ni composite coatings was confirmed by SEM cross sectional inspection. Following deposition, the coatings were heat treated in an air furnace. The influence of heat treatment holding time on the WC-Ni coatings was studied using chemical analysis by X-ray diffraction. Heat treatments peak temperatures for the WC/Ni- Ni and high entropy alloy coatings were 600°C and 550°C, respectively. Coatings microhardness and porosity volume fraction were measured for all the samples. The HEA coating outperformed the WC/Ni-Ni hardness but exhibited a higher level of porosity. The coatings were then subjected to erosion experiments using alumina particles with variable impact angles (30°, 60°, and 90°). To compare the different materials, an average erosion value was calculated for each target specimen. The WC/Ni-Ni as-sprayed coating was the most effective against a 60° impingement angle. The HEA coating, on the other hand, demonstrated greater resistance to impact angles of 30° and 90°. SEM was utilized to examine the eroded areas and determine the main mechanisms of erosion.
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