标题: 钛与氧化锆介面高温反应机构及其结构分析
Microstructural Characterization and Reaction Mechanisms of the Ti/ZrO2 Interface between 1100° and 1550°C
作者: 林昆霖
Kun-Lin Lin
林健正
Chien-Cheng Lin
材料科学与工程学系
关键字: 钛金属;氧化锆;介面反应;扩散;Titanium;Zirconia;Interface Reaction;Diffusion
公开日期: 2005
摘要: 本研究探讨Ti与ZrO2经1100-1550oC热处理后介面反应的微观结构及生成机构应。将利用EPMA、SEM/EDS、及 TEM/EDS深入分析完整瞭解不同热处理温度的介面微观结构的差异性,并利用相图Ti-Zr-O相图,进一步探讨Ti与ZrO2扩散偶介面微观结构的演化(Microstructural Evolution)及生成机构(Formation Mechanism)。

钛与氧化锆扩散偶经1100℃介面反应后,层状结构的Ti2ZrO+α-Ti(Zr, O)在介面处生成。氧化锆侧的变化不明显。当钛与氧化锆扩散偶经1300℃介面反应后,三层明显的反应层在介面处生成,由钛至氧化锆侧分别为层状结构的Ti2ZrO+α-Ti(Zr, O)、致密的orthorhombic 结构之β'-Ti(Zr, O)及β'-Ti(Zr, O)+c-ZrO2-x(cubic之缺氧氧化锆)两相共存。远离介面处的氧化锆侧,α-Zr(hexagonal结构)与t-ZrO2-x(tetragonal之缺氧氧化锆)共存,在冷却过程中,α-Zr(O)会从t-ZrO2-x中析出,当α-Zr(O)析出后,O/Zr之比值就会增加。愈靠近介面,氧扩散进钛侧的量愈多,缺氧愈严重,其析出的α-Zr(O)量愈多。
钛与氧化锆扩散偶经1400℃介面反应后,四层明显的反应层在介面处发现,依序从钛侧至氧化锆侧分别为层状结构的Ti2ZrO+α-Ti(Zr, O)、针状的α-Ti(Zr, O)+β'-Ti(Zr, O)两相共存、致密的β'-Ti(Zr, O)及β'-Ti(Zr, O)+c-ZrO2-x(cubic之缺氧氧化锆)两相共存。冷却过程中,针状的α-Ti(Zr, O)从β'-Ti(Zr, O)中析出,析出方式以ledge mechanism成长,其之间有两种方位关系:一种为[2-1-10]α-Ti // [001]β'-Ti 及 (0001)α-Ti // (100)β'-Ti,另一种为[2-1-10]α-Ti // [021]β'-Ti 及 (0001)α-Ti // (1-12)β'-Ti.。远离介面处的氧化锆侧,发现有α-Zr(O)、lenticular t-ZrO2-x (透镜状之tetragonal缺氧氧化锆氧化锆)、twined t'-ZrO2-x及ordered 结构之cubic-ZrO2-x。

钛与氧化锆扩散偶经1550℃介面反应后,五层明显的反应层在介面处发现,依序从钛侧至氧化锆侧分别为层状结构的Ti2ZrO+α-Ti(Zr, O)、Ti2ZrO+α-Ti(Zr, O)+β'-Ti(Zr, O)三相共存、针状的α-Ti(Zr, O)+β'-Ti(Zr, O)两相共存、致密的β'-Ti(Zr, O)及β'-Ti(Zr, O)+c-ZrO2-x(cubic之缺氧氧化锆)两相共存。冷却过程中,Ti2ZrO相从α-Ti中析出,高温反应过程中,Zr与O固溶于α-Ti(Zr, O)中,当α-Ti固溶达到饱合时,即以Ti2ZrO结构析出,且析出的Ti2ZrO有两种型态,一种为斜方晶相(orthorhombic)的层状结构,Ti2ZrO与α-Ti的方位关系为[0001]α-Ti//[110]Ti2ZrO及(10-10)α-Ti//(1-10)Ti2ZrO;另一种为六方晶相(hexagonal)的颗粒状结构,其方位关系为[0001]α-Ti//[0001]Ti2ZrO及(10-10)α-Ti//(10-10)Ti2ZrO。远离介面处的氧化锆侧,发现有α-Zr(O)、lenticular t-ZrO2-x (透镜状之tetragonal缺氧氧化锆氧化锆)、twined t'-ZrO2-x及ordered 结构之cubic-ZrO2-x。
The diffusional reaction between titanium and zirconia was carried out isothermally in argon at temperatures range from 1100° to 1550°C. The distinct reaction layers between titanium and zirconia were investigated using electron probe microanalyses (EPMA), analytical scanning electron microscopy (SEM), and analytical transmission electron microscopy (TEM) both attached with an energy-dispersive spectrometer (EDS). After annealing at 1100°C/6 h, a lamellar of Ti2ZrO and α-Ti(O, Zr) phases were found in the interface, while zirconia grains did not grow conspicuously. At 1300°C, a lamellar of Ti2ZrO + α-Ti(O, Zr) and β'-Ti (Zr, O) were found in the titanium side. The α-Zr excluded from t-ZrO2-x in the zirconia side during cooling. At 1400°C, lamellar of Ti2ZrO + α-Ti(O, Zr), acicular α-Ti (O, Zr) + β'-Ti (O, Zr), and continuous β'-Ti (Zr, O) layers were found in the titanium side. The acicular α-Ti(Zr, O) was precipitated from β'-Ti(Zr, O) matrix by means of the ledge mechanism. The acicular α-Ti and the β'-Ti showed two different orientation relations: one was [2-1-10]α-Ti // [001]β'-Ti and (0001)α-Ti // (100)β'-Ti, and the other was [2-1-10]α-Ti // [021]β'-Ti and (0001)α-Ti // (1-12)β'-Ti. After annealing at 1550°C, four layers in a sequence of Ti2ZrO + α-Ti(O, Zr), Ti2ZrO + α-Ti(O, Zr) + β'-Ti (O, Zr), acicular α-Ti (O, Zr) + β'-Ti (O, Zr), and continuous β'-Ti (Zr, O) were formed in the titanium side after cooling. The lamellar and the spherical Ti2ZrO, which were orthorhombic and hexagonal, respectively, were found. The spherical hexagonal Ti2ZrO was an ordered structure, with zirconium and oxygen occupying substitutional and interstitial sites, respectively. The orientation relations between α-Ti and the lamellae orthorhombic Ti2ZrO were determined to be [0001]α-Ti // [110]Ti2ZrO and (10-10)α-Ti // (1-10)Ti2ZrO; meanwhile those between the α-Ti and the spherical hexagonal Ti2ZrO were [0001] α-Ti // [0001]Ti2ZrO and (10-1 0)α-Ti // (10-10)Ti2ZrO. In the zirconia side, when held above 1400°C, two reaction layers were found: near the original interface, β'-Ti coexisted with fine spherical c-ZrO2-x and Chinese-script-like c-ZrO2-x, which dissolved a significant amount of Y2O3 in solid solution; further away from the original interface, the coarsened intergranular α-Zr was excluded from metastable ZrO2-x, resulting in the lenticular t-ZrO2-x and ordered c-ZrO2-x. The ordered c-ZrO2-x was identified by the 1/5{113} superlattice reflections of its electron diffraction patterns. The microstructural developments and reaction mechanisms in the Ti/ZrO2 diffusion couples annealed for various temperatures were described by the aid of the Ti-Zr-O ternary phase diagram.
URI: http://140.113.39.130/cdrfb3/record/nctu/#GT009018808
http://hdl.handle.net/11536/81969
显示于类别:Thesis


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