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Spinel Formation, Reaction Conditions and Densification Properties of Magnesia-Spinel Composites

机译:镁-尖晶石复合材料的尖晶石形成,反应条件和致密化性能

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摘要

Densification, reaction conditions and properties of densified MgO and spinel composites were examined using both pressureless sintering and hot-pressing. Initially fine (32 nm) MgO powder, either alone or blended with μm dimension spinel particles or alumina powder, could not be sintered without extensive and large scale cracking. Bulk densities of calcined MgO discs after uniaxial and isostatic pressing, and after pressureless sintering, were thus determined as a function of powder calcination temperature. The peak temperature of 1300 ℃ for 2 h was found to be optimum for pure MgO powders, giving the highest bulk density for the MgO discs. Increasing calcination temperature and decreasing the heating rate reduced the extent of cracking, but did not eliminate it completely. However, the use of precalcined MgO powder and a slow heating rate gave dense materials with no large-scale cracks. This work helped to understand better how macrocracking caused by the fabrication stage could be reduced and/or removed. The conditions of temperature and time to produce in-situ formed spinel were conformed by XRD. The sintering parameters and conditions, based on the density, calcination temperatures, pressure, time and particle size, were determined, and the optimum sintering schedule was proposed for MgO-spinel composites.
机译:使用无压烧结和热压法检查了致密化的MgO和尖晶石复合材料的致密化,反应条件和性能。最初,单独(或与μm尺寸的尖晶石颗粒或氧化铝粉末混合)的MgO细粉(32 nm),如果不进行大范围的大规模开裂,就无法进行烧结。因此确定了煅烧的MgO圆盘在单轴和等静压后以及无压烧结后的体积密度,其是粉末煅烧温度的函数。发现1300℃的峰值温度2 h对于纯MgO粉末是最适的,使MgO盘的堆积密度最高。煅烧温度的升高和加热速率的降低降低了裂化程度,但并未完全消除。但是,使用预煅烧的MgO粉末和缓慢的加热速度可使致密的材料没有大的裂纹。这项工作有助于更好地了解如何减少和/或消除制造阶段引起的宏观裂纹。用XRD证实了制备原位形成的尖晶石的温度和时间条件。根据密度,煅烧温度,压力,时间和粒度确定了烧结参数和条件,并提出了MgO-尖晶石复合材料的最佳烧结时间表。

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