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Dynamic modeling of micro- and nano-sized particles impinging on the substrate during suspension plasma spraying
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作者 Kai ZHANG Hong-bing XIONG Xue-ming SHAO 《Journal of Zhejiang University-Science A(Applied Physics & Engineering)》 SCIE EI CAS CSCD 2016年第9期733-744,共12页
Suspension plasma spraying (SPS) can be utilized to manufacture finely structured coatings. In this process, liquid suspended with microor nano-sized solid particles is injected into a plasma jet. It involves drople... Suspension plasma spraying (SPS) can be utilized to manufacture finely structured coatings. In this process, liquid suspended with microor nano-sized solid particles is injected into a plasma jet. It involves droplet injection, solvent evaporation, and discharge, acceleration, heating, and melting of the solid particles. The high-speed and high-temperature particles final- ly impact on the substrate wall, to form a thin layer coating. In this study, a comprehensive numerical model was developed to simulate the dynamic behaviors of the suspension droplets and the solid particles, as well as the interactions between them and the plasma gas. The plasma gas was treated as compressible, multi-component, turbulent jet flow, using Navier-Stokes equations solved by the Eulerian method. The droplets and solid particles were treated as discrete Lagrangian entities, being tracked through the spray process. The drag force, Saffman lift force, and Brownian force were taken into account for the aerodynamic drag force, aerodynamic lift force, and random fluctuation force imposed on the particles. Spatial distributions of the micro- and nano-sized particles are given in this paper and their motion histories were observed. The key parameters of spray distribution, including particle size and axial spray distance, were also analyzed. The critical size of particle that follows well with the plasma jet was deduced for the specified operating conditions. Results show that in the downstream, the substrate influences the flow field structure and the particle characteristics. The appropriate spray distances were obtained for different microand nano-sized particles. 展开更多
关键词 Suspension plasma spray (SPS) Stokes number Brownian force Multiphase flow Solid-fluid interaction
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悬浮液等离子体喷涂厚YSZ热障涂层结构与性能研究
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作者 杨加胜 钟兴华 +5 位作者 陶顺衍 邵芳 程泽飞 赵华玉 庄寅 倪金星 《湘潭大学学报(自然科学版)》 CAS 2019年第6期61-68,共8页
采用悬浮液等离子体喷涂(SPS)工艺在以GH3128高温合金为基底,CoNiCrAlY为黏结层的表面上制备氧化钇部分稳定的氧化锆(YSZ)厚热障涂层(TTBCs),研究单片层的形貌特征及单片层之间的堆叠行为对涂层微结构的影响.对无支撑的YSZ涂层进行了120... 采用悬浮液等离子体喷涂(SPS)工艺在以GH3128高温合金为基底,CoNiCrAlY为黏结层的表面上制备氧化钇部分稳定的氧化锆(YSZ)厚热障涂层(TTBCs),研究单片层的形貌特征及单片层之间的堆叠行为对涂层微结构的影响.对无支撑的YSZ涂层进行了1200~1600℃保温24 h和1550℃保温20~100 h的高温时效处理,分析涂层的物相组成和晶粒尺寸等的变化;对涂层试样进行了高温燃气焰流循环热考核,并对其失效机理进行了探讨.结果表明,SPS单片层由四方相晶粒组成.涂层经1550℃高温热处理40 h发生四方相(t)向单斜相(m)转变,且m相的含量随热处理时间的延长而增加,但对于24 h高温处理样品,即便将热处理温度提升到1600℃,也未见t→m相变.SPS涂层经热考核前后应力演变是其失效根源,通过相邻柱状晶的脱落可有效地释放陶瓷层中的应力集中,最终与界面附近陶瓷层微裂纹相互连接而导致涂层剥落. 展开更多
关键词 悬浮等离子体喷涂 厚热障涂层 单片层 高温稳定性 热循环测试
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