Mineral-Oxide-Doped Aluminum Titanate Ceramics with Improved Thermomechanical Properties

IF 18.6 1区 材料科学 Q1 MATERIALS SCIENCE, CERAMICS Journal of Advanced Ceramics Pub Date : 2013-01-01 DOI:10.1155/2013/214974
Ramanathan Papitha, M. B. Suresh, D. Das, Roy Johnson
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引用次数: 15

Abstract

Investigations were carried out, on the effect of addition of kaolinite (2Al2O3·3SiO2·2H2O) and talc (Mg3Si4O10(OH)2) in terms of bulk density, XRD phases, microstructure, as well as thermal and mechanical properties of the aluminium titanate (AT) ceramics. AT ceramics with additives have shown enhanced sinterability at 1550°C, achieving close to 99% of TD (theoretical density) in comparison to 87% TD, exhibited with pure AT samples sintered at 1600°C, and found to be in agreement with the microstructural observations. XRD phase analysis of samples with maximum densities resulted in pure AT phase with a shift in unit cell parameters suggesting the formation of solid solutions. TG-DSC study indicated a clear shift in AT formation temperature with talc addition. Sintered specimens exhibited significant reduction in linear thermal expansion values by 63% (0.4210−6/C, (30–1000°C)) with talc addition. Thermal hysteresis of talc-doped AT specimens showed a substantial increase in hysteresis area corresponding to enhanced microcrack densities which in turn was responsible to maintain the low expansion values. Microstructural evaluation revealed a sizable decrease in crack lengths and 200% increase in flexural strength with talc addition. Results are encouraging providing a stable formulation with substantially enhanced thermomechanical properties.
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改善热机械性能的矿物氧化物掺杂钛酸铝陶瓷
研究了添加高岭石(2Al2O3·3SiO2·2H2O)和滑石(Mg3Si4O10(OH)2)对钛酸铝(AT)陶瓷的容重、XRD相、微观结构、热性能和力学性能的影响。添加了添加剂的AT陶瓷在1550°C时的烧结性能得到了提高,达到了TD(理论密度)的99%,而在1600°C时烧结的纯AT样品的TD(理论密度)为87%,这与显微结构观察结果一致。对密度最大的样品进行XRD物相分析,得到纯AT相,单体胞参数发生变化,表明形成了固溶体。TG-DSC研究表明,滑石的加入明显改变了AT地层温度。添加滑石后,烧结试样的线性热膨胀值显著降低63%(0.4210−6/C,(30-1000℃))。掺滑石AT试样的热滞回表明,微裂纹密度增加导致滞回面积大幅增加,从而维持了较低的膨胀值。显微组织评价显示,添加滑石粉后,裂纹长度明显减小,抗折强度增加200%。结果令人鼓舞,提供了稳定的配方,大大提高了热机械性能。
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来源期刊
Journal of Advanced Ceramics
Journal of Advanced Ceramics MATERIALS SCIENCE, CERAMICS-
CiteScore
21.00
自引率
10.70%
发文量
290
审稿时长
14 days
期刊介绍: Journal of Advanced Ceramics is a single-blind peer-reviewed, open access international journal published on behalf of the State Key Laboratory of New Ceramics and Fine Processing (Tsinghua University, China) and the Advanced Ceramics Division of the Chinese Ceramic Society. Journal of Advanced Ceramics provides a forum for publishing original research papers, rapid communications, and commissioned reviews relating to advanced ceramic materials in the forms of particulates, dense or porous bodies, thin/thick films or coatings and laminated, graded and composite structures.
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