4.7 Article

Phase and microstructure evolutions of in-situ ZrC composite coating under plasma torch ablation

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SURFACE & COATINGS TECHNOLOGY
卷 459, 期 -, 页码 -

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ELSEVIER SCIENCE SA
DOI: 10.1016/j.surfcoat.2023.129387

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ZrC composite coating; In-situ synthesis; Ablation resistance; Oxidation layer; Plasma spraying

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A ZrC anti-ablation composite coating was prepared using atmospheric plasma spraying, by introducing the chemical reaction between Zr and SiC. The as-prepared ZrC coating showed desirable protection for 20 s ablation, with the oxide layer formed after ablation mainly composed of tetragonal zirconia (over 50 wt%). The microstructure evolution of the ablated coating surface was clearly observed. It was found that zirconia and silica exhibited good compatibility and cooperation after 15 s ablation, forming a dense Zr-Si-O anti-ablation layer. The presence of meta-stable zirconia in the oxide layer could be attributed to the smaller grain size and compact arrangement of zirconia particles.
A ZrC anti-ablation composite coating was prepared by introducing the chemical reaction between Zr and SiC to atmospheric plasma spraying. The as-prepared ZrC coating could provide desirable protection for 20 s ablation and the phase identification results shown that the oxide layer formed after the ablation process was mainly composed of tetragonal zirconia (higher than 50 wt%). The microstructure evolution of the ablated coating surface was clearly revealed. It is demonstrated that zirconia and silica shown good compatibility and cooper-ation after 15 s ablation and dense Zr-Si-O anti-ablation layer was formed. It could be attributed to the intimate and homogenous distribution of in-situ nanostructured ZrC and silicide phases in the as-prepared coating. The maintenance of meta-stable zirconia in the oxide layer could be attributed to the smaller grain size and compact arrangement of the zirconia particles.

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