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一种抑制陶瓷涂层脆性断裂的铠装结构。

An Armour Structure to Suppress the Brittle Failure of Ceramic Coatings.

作者信息

Liu Wei, Bao Fubing, Zhang Yinning, Wang Jinqing, Liang Xiaoyu

机构信息

School of Mechanical Engineering, Zhejiang Sci-Tech University, Hangzhou 310018, China.

College of Metrology and Measurement Engineering, China Jiliang University, Hangzhou 310018, China.

出版信息

Materials (Basel). 2023 Jul 11;16(14):4941. doi: 10.3390/ma16144941.

Abstract

The brittle failure of ceramic coatings limits their application in many fields. To address this issue, a novel armoured ceramic coating was developed to suppress brittle failure. First, an interconnected frame microstructure was micromachined onto the surface of a mild steel substrate using a nanosecond laser. Subsequently, a polymer-derived ceramic slurry was sprayed and sintered to obtain an armoured ceramic coating. The laser-micromachined burr-like microstructure of the substrate facilitated adhesion between the coating and the substrate. The results of the mechanical properties test showed that the armoured coating could withstand more than 20 cycles of water-cooled thermal shock at 600 °C, and the peeling area of the armoured coating was approximately three times less than that of the unarmoured coating under a normal load of 1471 N. The laboratory and field corrosion test results indicated that at high temperatures, the corrosion resistance of the armoured coating was comparable with that of the unarmoured coating and was approximately 10 times higher than that of the uncoated sample. The proposed method will aid in suppressing the brittle failure of ceramic coatings and broaden their scope of application in different fields.

摘要

陶瓷涂层的脆性失效限制了它们在许多领域的应用。为了解决这个问题,人们开发了一种新型的铠装陶瓷涂层来抑制脆性失效。首先,使用纳秒激光在低碳钢基底表面微加工出一种相互连接的框架微结构。随后,喷涂并烧结一种聚合物衍生的陶瓷浆料,以获得铠装陶瓷涂层。基底的激光微加工毛刺状微结构促进了涂层与基底之间的附着力。力学性能测试结果表明,铠装涂层在600℃下能够承受超过20次水冷热冲击循环,并且在1471N的正常载荷下,铠装涂层的剥落面积比未铠装涂层大约小三倍。实验室和现场腐蚀测试结果表明,在高温下,铠装涂层的耐腐蚀性与未铠装涂层相当,并且比未涂层样品高约10倍。所提出的方法将有助于抑制陶瓷涂层的脆性失效,并拓宽它们在不同领域的应用范围。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/77e4/10381692/636292402676/materials-16-04941-g001.jpg

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