火山灰
材料科学
微观结构
热障涂层
火山
涂层
润湿
沉积(地质)
化学气相沉积
冶金
复合材料
矿物学
化学工程
纳米技术
地质学
地球化学
古生物学
工程类
沉积物
作者
Yiqian Guo,Wenjia Song,Lei Guo,Xinxin Li,Wenting He,Xudong Yan,Donald B. Dingwell,Hongbo Guo
出处
期刊:Advanced Science
[Wiley]
日期:2023-02-02
卷期号:10 (10): e2205156-e2205156
被引量:104
标识
DOI:10.1002/advs.202205156
摘要
Volcanic ash is a major threat to aviation safety. The softening/melting temperatures of volcanic ash lie far below typical aero-engine operating temperatures. Thus, molten ash can accelerate the failure of thermal barrier coatings (TBCs). Here, inspired by natural superhydrophobic surfaces (e.g., the lotus leaf), a molten-volcanic-ash-phobic TBC, which provides a large possibility to eliminate molten ash issues of TBCs, is developed. A hierarchically structured surface is first prepared on a (Gd0.9 Yb0.1 )2 Zr2 O7 (GYbZ) pellet by ultrafast laser direct writing technology, aiming to confirm the feasibility of the biomimetic microstructure to repel molten volcanic ash wetting. Then biomimetic-structured GYbZ TBCs are successfully fabricated using plasma spray physical vapor deposition, which reveals "silicate" phobicity at high temperatures. The exciting molten-volcanic-ash-phobic attribute of the designed surfaces is attributed to the lotus-leaf-like dual-scale microstructure, emulating in particular the existence of nanoparticles. These findings may be an important step toward the development of next-generation aviation engines with greatly reduced vulnerability to environmental siliceous debris.
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