Synthesis of In Situ ZrB2-SiC-ZrC Coating on ZrC-SiC Substrate by Reactive Plasma Spraying
Синтез in situ покрытия ZrB2–SiC–ZrC на подложке ZrC–SiC методом реактивного плазменного напыления
2022-03-17
SCID: 54.1/c9yadya5
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ZrB2-SiC-ZrC composite coatingZrH2-Si-B4C reaction behaviormicrohardness >1000 HV1phase transformation sequence (ZrH1.66, Zr3O, ZrC, ZrB2, Zr2Si, ZrSi, SiC)reactive plasma spraying (RPS)
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Abstract (AI)
In situ synthesis feasibility of ZrB2-SiC-ZrC composite coatings on ZrC ceramics by reactive plasma spraying (RPS) was investigated. To help to understand the phase evolution during plasma spraying process, reaction behavior in the ZrH2-Si-B4C system was explored carefully by differential scanning calorimetry. The results indicated that the phase transformation sequence in the ZrH2-Si-B4C system could be described as ZrH1.66, Zr3O, ZrC, ZrB2, Zr2Si, ZrSi, and SiC. The prior formation of ZrC was due to high diffusion rate of C atoms from B4C. ZrB2 was produced above 1100 °C. As the temperature increased, SiC were finally formed by the reaction of ZrC with ZrSi and B4C. The RPS composite coatings mainly consisted of ZrB2, SiC, and ZrC phases, except for a small fraction of ZrO2 phase. The microstructural characterization exhibited more dense melted splats, which appears to increase gradually with the increase in spraying currents and distances. The coatings had typical lamellar structure and adhered to the substrate well. The microhardness values were higher than 1000 HV1, but there were few variations with varying spraying currents and distances.
Key Findings
1
Coatings display a typical lamellar structure, good adhesion to the substrate, and high microhardness values above 1000 HV1 with little variation across spraying parameters.
2
Differential scanning calorimetry identified the phase transformation sequence in the ZrH1.66-Si-B4C system: ZrH1.66 → Zr3O → ZrC → ZrB2 → Zr2Si → ZrSi → SiC.
3
RPS-produced coatings mainly contain ZrB2, SiC, and ZrC with a small amount of ZrO2 and exhibit dense melted splats increasing with spraying current and distance.
4
Reactive plasma spraying (RPS) can synthesize in situ ZrB2-SiC-ZrC composite coatings on ZrC ceramic substrates.
5
SiC is ultimately formed at higher temperatures by reaction of ZrC with ZrSi and B4C.
6
ZrC forms prior to ZrB2 due to a high diffusion rate of carbon atoms from B4C, and ZrB2 forms above 1100 °C.
Research Object
In situ synthesized ZrB2–SiC–ZrC composite coating on ZrC–SiC substrate produced by reactive plasma spraying
Research Subject
Phase evolution, reaction behavior, microstructure (lamellar melted splats, density, adhesion) and microhardness of the RPS-produced ZrB2–SiC–ZrC composite coatings as functions of temperature and spraying parameters
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2022-03-17
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