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The Preparation and Properties of Alumina Ceramics through a Two-Step Pressureless Sintering Process

机译:两步无压烧结法制备氧化铝陶瓷及其性能

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摘要

In this paper, a high-dense alumina ceramics were prepared through the two-step pressureless sintering process with high-purity alumina powder as raw materials and high-purity MgO as sintering aids. The effects of the sintering temperature in the first-step (T1) and the soaking time (t) in the second sintering step (T2) on the density, microstructure and mechanical properties of the alumina ceramics were studied. The results indicated that the relative density increased with the increase of T1 temperature whereas it increased and then decreased with the increase of MgO content. Higher T1 temperature and extended soaking time caused larger grain size, which accompanied with the Ostwald ripening of the grain and led to non-uniformity of grain size distribution. The addition of MgO was beneficial to the decrease in grain size due to pinning effect of the second phase. For samples with shorter soaking time, sintering with higher T1 temperature led to better mechanical properties because of its high density. However, for the long soaking time, all samples after sintering at different T1 temperature were fully-densified, so the grain size become to the dominant factor of strength, thus samples with lower T1 temperature exhibited better mechanical properties due to the refinement grain. Excessive addition of MgO resulted in defects, by which the strength increased firstly and then decreased slightly with the increased MgO content. For the samples with 2.5wt.% MgO, the optimum condition for the two-step pressureless sintering was T1=1450°C and T2=1400°C for 20h, and the obtained sample achieved the relative density of 96% and the strength of 507±32MPa.
机译:本文以高纯氧化铝粉为原料,高纯氧化镁为烧结助剂,通过两步无压烧结工艺制备了高密度氧化铝陶瓷。研究了第一步(T1)的烧结温度和第二步(T2)的均热时间(t)对氧化铝陶瓷的密度,微观结构和力学性能的影响。结果表明,相对密度随T1温度的升高而增加,而随MgO含量的增加而升高,然后降低。 T1温度越高,保温时间越长,晶粒尺寸越大,这伴随晶粒的奥斯特瓦尔德熟化而导致晶粒尺寸分布不均匀。由于第二相的钉扎作用,MgO的添加有利于减小晶粒尺寸。对于浸泡时间较短的样品,较高的T1温度烧结具有较高的密度,因此具有较好的机械性能。但是,对于较长的均热时间,在不同的T1温度下烧结后的所有样品均被完全致密化,因此晶粒尺寸成为强度的主要因素,因此,由于晶粒细化,具有较低T1温度的样品表现出更好的机械性能。 MgO的过量添加会导致缺陷,随着MgO含量的增加,强度会先增加然后略有下降。对于含2.5wt。%MgO的样品,两步无压烧结的最佳条件是T1 = 1450°C和T2 = 1400°C持续20h,所获得的样品的相对密度为96%,强度为90%。 507±32兆帕

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