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首页> 外文期刊>Surface & Coatings Technology >The role of microstructure in the mechanism of high velocity erosion of Cr3C2-NiCr thermal spray coatings: Part 1-As-sprayed coatings
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The role of microstructure in the mechanism of high velocity erosion of Cr3C2-NiCr thermal spray coatings: Part 1-As-sprayed coatings

机译:微观结构在Cr3C2-NiCr热喷涂层高速腐蚀机理中的作用:第1部分:喷涂层

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Carbide based thermal spray coatings are routinely applied to mitigate erosion under industrial conditions. However, the mechanism of erosion response under aggressive high velocity impact conditions remains unclear. In this work Cr3C2-25%NiCr thermal spray coatings were eroded at an impact velocity of 150 m/s by 20-25 mu m alumina grit. Coatings were deposited by High Velocity Air Fuel (HVAF) and High Velocity Oxygen Fuel (HVOF) thermal spray techniques to generate a range of coating quality spanning that applied industrially. In Part 1 of this two-part series, the mechanism of erosion as a function of coating composition and microstructure variation is discussed. The HVOF coating underwent significant in-flight dissolution of the carbide phase. The erosion response of the supersaturated NiCr matrix was characterised by brittle cracking and fracture. The HVAF coating retained a high carbide content with minimal phase dissolution. However, the rapid solidification of the matrix material made the coating prone to brittle interphase cracking during impact. On a larger scale, splat based erosion mechanisms played a significant role, especially in the HVOF coating. The mechanisms of impact response of these coatings were dependent upon the depth of erodent penetration and could not, therefore, be extrapolated from erosion testing at lower velocities.
机译:通常使用硬质合金热喷涂涂层来减轻工业条件下的腐蚀。但是,在侵蚀性高速冲击条件下的腐蚀反应机理仍然不清楚。在这项工作中,Cr3C2-25%NiCr热喷涂涂层被20-25μm的氧化铝砂粒以150m / s的冲击速度腐蚀。涂层通过高速空气燃料(HVAF)和高速氧气燃料(HVOF)热喷涂技术进行沉积,以产生一系列覆盖工业应用的涂层质量。在这个由两部分组成的系列的第1部分中,讨论了腐蚀与涂层成分和微观结构变化的关系的机理。 HVOF涂层在飞行中经历了碳化物相的明显溶解。 NiCr过饱和基体的腐蚀响应以脆性开裂和断裂为特征。 HVAF涂层保留了高碳化物含量,且相溶解最少。但是,基体材料的快速固化使涂层在冲击过程中易于发生脆性的相间开裂。在更大范围内,基于Splat的腐蚀机制起着重要作用,尤其是在HVOF涂层中。这些涂层的冲击响应机理取决于腐蚀剂渗透的深度,因此不能从较低速度的腐蚀试验中推断出来。

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