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用于电火花加工的氮化钛纳米颗粒增强氧化锆

TiN-Nanoparticulate-Reinforced ZrO for Electrical Discharge Machining.

作者信息

Lazar Ana, Kosmač Tomaž, Zavašnik Janez, Abram Anže, Kocjan Andraž

机构信息

Department for Nanostructured Materials, Jožef Stefan Institute, 1000 Ljubljana, Slovenia.

Jožef Stefan International Postgraduate School, 1000 Ljubljana, Slovenia.

出版信息

Materials (Basel). 2019 Aug 30;12(17):2789. doi: 10.3390/ma12172789.

Abstract

This study presents a fabrication route for an electrically conductive ZrO-TiN ceramic nanocomposite with a nanoscale TiN phase occupying ≤30 vol% to improve the mechanical reinforcement of the zirconia matrix, and at the same time provide electrical conductivity to facilitate electro-discharge machining (EDM). The TiN nanoparticles were incorporated into a 3 mol% yttria-stabilized tetragonal zirconia (Y-TZP) powder, either by admixing a TiN nanopowder (MCP) or by using in-situ synthesis (ISS) via the forced hydrolysis of a titanyl sulphate aqueous solution and the direct nitriding of as-synthesized titania nanoparticles, followed by consolidation and rapid sintering in a spark plasma sintering (SPS) system. The initial phase composition and crystal structure of the as-synthesized powders and the sintered samples were characterized by transmission electron microscopy (TEM) and X-ray difraction (XRD). The influence of the different fabrication routes on the microstructural evolution, electrical and mechanical properties, and affinity for EDM were assessed using TEM, focused ion beam scanning electron microscopy (FIB-SEM, Vickers indentation, electrical conductivity measurements, and profilometry. The MCP synthesis route resulted in finer microstructures that are less prone to microstructural inhomogeneities; however, using the ISS route, it was possible to fabricate electrically conductive Y-TZP nanocomposites containing only 15 vol% of the TiN nanoparticulate phase. Both synthesis routes resulted in an increase of the fracture toughness with an increase of the TiN phase due to the nanoparticulate TiN reinforcement of the Y-TZP ceramic matrix via crack-bridging toughening mechanisms. As both synthesis routes yielded Y-TZP nanocomposites capable of successful EDM machining at a TiN content of ≥30 vol% for the MCP and ≥ 15 vol% TiN for the ISS, a possible mechanism was developed based on the microstructure evolution and grain growth.

摘要

本研究提出了一种制备导电ZrO-TiN陶瓷纳米复合材料的方法,其中纳米级TiN相的体积分数≤30%,以改善氧化锆基体的机械增强作用,同时提供导电性以利于电火花加工(EDM)。通过混合TiN纳米粉末(MCP)或将硫酸氧钛水溶液强制水解并对合成的二氧化钛纳米颗粒直接氮化进行原位合成(ISS),将TiN纳米颗粒掺入3 mol%氧化钇稳定的四方氧化锆(Y-TZP)粉末中,随后在放电等离子烧结(SPS)系统中进行固结和快速烧结。通过透射电子显微镜(TEM)和X射线衍射(XRD)对合成粉末和烧结样品的初始相组成和晶体结构进行了表征。使用TEM、聚焦离子束扫描电子显微镜(FIB-SEM)、维氏压痕、电导率测量和轮廓仪评估了不同制备路线对微观结构演变、电学和力学性能以及对EDM的亲和性的影响。MCP合成路线产生的微观结构更细,不易出现微观结构不均匀性;然而,使用ISS路线,可以制备仅含有15 vol% TiN纳米颗粒相的导电Y-TZP纳米复合材料。由于通过裂纹桥接增韧机制,纳米颗粒TiN增强了Y-TZP陶瓷基体,两种合成路线均导致随着TiN相的增加,断裂韧性提高。由于两种合成路线均产生了能够在MCP的TiN含量≥30 vol%和ISS的TiN含量≥15 vol%时成功进行EDM加工的Y-TZP纳米复合材料,基于微观结构演变和晶粒生长,提出了一种可能的机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c096/6747830/decf1956a3a1/materials-12-02789-g001.jpg

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