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Thermal Treatment of γ-Al2O3 for the Preparation of Stereolithography 3D Printing Ceramic Slurries

机译:γ-Al2O3的热处理γ-Al2O3制备立体镀3D印刷陶瓷浆料

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Alumina (Al2O3) suspensions were prepared for the effective application in the stereolithography three-dimensional (3D) printing process. Thermal treatment of g-Al2O3 could optimize the ceramic slurries to meet the requirements of stereolithography 3D printing technique. In this study, alumina powders were modified by thermal treatment at different temperatures for the preparation of well dispersed ceramic slurries. The influence of thermal treatment on the raw powder, printed green bodies, and sintered alumina parts was systematically studied. Thermogravimetric analysis indicated that the decomposition temperature of photosensitive resin was between 390°C and 460°C. The alumina powders became denser, the crystal grains changed from round sphere-shaped to long cylinder-shaped, and the pores disappeared with increasing thermal treatment temperature. After the 3D printing process, the microstructure of green bodies and sintered alumina ceramics exhibited significant variation. Decomposition and removal of photosensitive resin led to higher water absorption, higher porosity, and lower bulk density of alumina ceramics compared to the printed green bodies. The scattering phenomenon in ceramic slurries and layer-by-layer forming characteristic determined the different shrinkage in three directions. Experimental results suggested that 1500°C was considered as the optimal thermal treatment temperature, with the water absorption of 107%, open porosity of 91%, and bulk density of 0.67g·cm-3. The higher thermal treatment temperatures would cause alumina powders to clump and agglomerate.
机译:制备氧化铝(Al2O3)悬浮液,用于在立体镀三维(3D)印刷过程中的有效应用。 G-Al2O3的热处理可以优化陶瓷浆料以满足立体刻度3D印刷技术的要求。在该研究中,通过在不同温度下的热处理来修饰氧化铝粉末,以制备良好分散的陶瓷浆料。系统地研究了热处理对原料粉末,印刷的生坯和烧结氧化铝零件的影响。热重分析表明光敏树脂的分解温度在390℃至460℃之间。氧化铝粉末变得更加密集,晶粒从圆形球形变为长圆柱形,并且孔隙随着热处理温度的增加而消失。在3D打印过程之后,生坯和烧结氧化铝陶瓷的微观结构表现出显着的变化。与印刷的生体相比,分解和去除光敏树脂的吸水性,较高的孔隙率和较低的氧化铝陶瓷的密度。陶瓷浆料中的散射现象和层层形成特性在三个方向上确定了不同的收缩。实验结果表明,1500°C被认为是最佳的热处理温度,吸水率为107%,开口孔隙率为91%,堆积密度为0.67g·cm-3。较高的热处理温度将导致氧化铝粉末丛生和附聚。

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