在金属基板上热生长陶瓷结合层,以化学方式结合所有界面的陶瓷涂层的等离子喷涂

IF 3.2 3区 材料科学 Q2 MATERIALS SCIENCE, COATINGS & FILMS
Peng-Yan Shi, Ya-Long Zhang, Xiao-Tao Luo, Kang-Wei Xu, Shu-Feng Xie, Ling-Jie Chen, Jiu-Jing Song,  Rou Chen, Chang-Jiu Li
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引用次数: 0

摘要

等离子喷涂陶瓷涂层广泛应用于工业中金属部件的防腐。然而,传统的陶瓷涂层主要通过机械联锁与金属基体结合,其拉伸附着力低于40 MPa,这限制了其高负载应用。在这项研究中,提出了一种新的策略,通过引入陶瓷结合涂层,在涂层系统的所有界面上形成化学结合,从而将涂层的附着力提高到100 MPa以上。以钛(Ti)为典型基材,Al2O3-13TiO2 (AT13)为典型涂层材料,进行了实验验证。在不同的氧化条件下,采用热生长的方法在Ti基体上制备了陶瓷粘结层。AT13涂层在300°C下沉积,该温度是根据临界键合温度理论确定的。发现陶瓷层间所有界面的化学键合都是通过临界键合温度概念保证的扩散熔片的动态润湿来实现的。通过减小AT13陶瓷涂层与基体的有效接触面积对拉伸试验进行了改进,制备的陶瓷涂层的附着力在105 ~ 121 MPa之间。该研究为等离子喷涂陶瓷涂层在高负载环境下的应用提供了新的技术途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Plasma Spraying of Ceramic Coating with All Interfaces Bonded Chemically through a Ceramic Bond Coat Thermally Grown on Metal Substrate

Plasma Spraying of Ceramic Coating with All Interfaces Bonded Chemically through a Ceramic Bond Coat Thermally Grown on Metal Substrate

Plasma-sprayed ceramic coatings are widely used for corrosion protection of metallic parts in industries. However, conventional ceramic coatings bond to metal substrates mainly through mechanical interlocking, with a tensile adhesion lower than 40 MPa, which limits their high-load applications. In this study, a new strategy to enhance the adhesion of coatings to a level over 100 MPa is proposed through introducing a ceramic bond coat to create chemical bonding throughout all the interfaces within the coating system. The experimental approval is made using titanium (Ti) as a typical substrate and Al2O3-13TiO2 (AT13) as a typical coating material. The ceramic bond coat on Ti substrate was introduced by thermal growing under different oxidation conditions. The AT13 coating was deposited at 300 °C which was determined following the critical bonding temperature theory. It is found that the chemical bonding for all interfaces between ceramic layers was achieved by dynamic wetting of spreading molten splats ensured by the critical bonding temperature concept. The tensile test was modified by reducing the effective contact area of AT13 ceramic coatings to the substrate, and the adhesion of the ceramic coating prepared by the new method ranged from 105 to 121 MPa. This study provides a new technological approach for the application of plasma-sprayed ceramic coatings in high-load environments.

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来源期刊
Journal of Thermal Spray Technology
Journal of Thermal Spray Technology 工程技术-材料科学:膜
CiteScore
5.20
自引率
25.80%
发文量
198
审稿时长
2.6 months
期刊介绍: From the scientific to the practical, stay on top of advances in this fast-growing coating technology with ASM International''s Journal of Thermal Spray Technology. Critically reviewed scientific papers and engineering articles combine the best of new research with the latest applications and problem solving. A service of the ASM Thermal Spray Society (TSS), the Journal of Thermal Spray Technology covers all fundamental and practical aspects of thermal spray science, including processes, feedstock manufacture, and testing and characterization. The journal contains worldwide coverage of the latest research, products, equipment and process developments, and includes technical note case studies from real-time applications and in-depth topical reviews.
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