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Enhanced Ductility in Thermally Sprayed Titania Coating Synthesized Using a Nanostructured Feedstock

机译:使用纳米结构原料合成的热喷涂二氧化钛涂层的延展性得到增强

摘要

Nanostructured and conventional titania (TiO2) feedstock powders were thermally sprayed via high velocity oxy-fuel (HVOF). The microstructure, porosity, Vickers hardness, crack propagation resistance, bond strength (ASTM C633), abrasion behavior (ASTM G65) and the wear scar characteristics of these two types of coatings were analyzed and compared. The coating made from the nanostructured feedstock exhibited a bimodal microstructure, with regions containing particles that were fully molten (conventional matrix) and regions with embedded particles that were semi-molten (nanostructured zones) during the thermal spraying process. The bimodal coating also exhibited higher bond strength and higher wear resistance when compared to the conventional coating. By comparing the wear scars of both coatings (via scanning electron microscopy and roughness measurements) it was observed that when the coatings were subjected to the same abrasive conditions the wear scar of the bimodal coating was smoother, with more plastically deformed regions than the conventional coating. It was concluded that this enhanced ductility of the bimodal coating was caused by its higher toughness. The results suggest that nanostructured zones randomly distributed in the microstructure of the bimodal coating act as crack arresters, thereby enhancing toughness and promoting higher critical depth of cut, which provides a broader plastic deformation range than that exhibited by the conventional coating. This work provides evidence that the enhanced ductility of the bimodal coating is a nanostructured-related property, not caused by any other microstructural artifact.
机译:纳米结构和常规的二氧化钛(TiO2)原料粉末通过高速氧-燃料(HVOF)热喷涂。分析并比较了这两种类型涂层的微观结构,孔隙率,维氏硬度,抗裂纹扩展性,粘结强度(ASTM C633),耐磨性(ASTM G65)和磨损痕迹特性。由纳米结构的原料制成的涂层表现出双峰微结构,在热喷涂过程中其区域包含完全熔融的颗粒(常规基质)和半熔融的嵌入颗粒区域(纳米结构区)。与常规涂层相比,双峰涂层还表现出更高的粘结强度和更高的耐磨性。通过比较两种涂层的磨损痕迹(通过扫描电子显微镜和粗糙度测量),可以观察到,当涂层在相同的磨蚀条件下使用时,双峰涂层的磨损痕迹比传统涂层更光滑,塑性变形区域更多。结论是,双峰涂层的这种增强的延展性是由其较高的韧性引起的。结果表明,随机分布在双峰涂层微观结构中的纳米结构区可作为防裂剂,从而增强韧性并促进更高的切削临界深度,从而提供比常规涂层更大的塑性变形范围。这项工作提供的证据表明,双峰涂层的延展性增强是与纳米结构相关的特性,而不是由其他任何微结构伪像引起的。

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    Lima R. S.; Marple Basil R.;

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  • 年度 2005
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  • 原文格式 PDF
  • 正文语种 eng
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