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Preparation and Thermal Shock Behavior of a Metal-enamel High-temperature Protective Coating |
LI Fengjie,CHEN Minghui( ),ZHANG Zheming,WANG Shuo,WANG Fuhui |
Corrosion and Protection Division, Shenyang National Laboratory for Materials Science, Northeastern University, Shenyang 110819, China |
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Abstract A metal-enamel composite high temperature protective coating was prepared by using borosilicate enamel with low softening point as bonding phase. Its thermal shock behavior was investigated via cyclically heating at 900 ℃ and quenching into room-temperature water. The higher the proportion of silica, the higher the softening point of the borosilicate enamel. When the ratio (mass fraction) of boron oxide to silica reaches 0.6, the softening point of the borosilicate enamel is higher than 750 ℃. Thermal shock test indicated that the metal-enamel composite coating containing 20% nickel particles had high thermal shock resistance, and the coating surface was intact after 30 thermal shock cycles. The enamel coating is easy to crack and peel under thermal shock condition when no metal particles are incorporated or the metal content is as high as 40%.
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Received: 29 August 2019
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Fund: National Natural Science Foundation of China(51871053) |
Corresponding Authors:
Minghui CHEN
E-mail: mhchen@mail.neu.edu.cn
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