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Ceramic binder jetting additive manufacturing: Particle coating for increasing powder sinterability and part strength

机译:陶瓷粘合剂喷射增材制造:颗粒涂层可提高粉末的烧结性和零件强度

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The objective of this research is to test a hypothesis that particle coating increases the sinterability of ceramic powder. This method is developed for binder jetting additive manufacturing but tested using a pressing and sintering route for the simplicity. Binder jetting additive manufacturing has demonstrated its considerable capability in manufacturing ceramic parts with a complex shape and/or a customized design. Currently, the density of the ceramic parts made by binder jetting is low and their mechanical properties are inferior. The main reason is the low sinterability of the powder feedstock. A new powder surface modification method, i.e., particle coating, was applied to increase the powder sinterability and the part strength. Specifically, coarse crystalline alumina particles (70 and 10 mu m in average) were coated with amorphous alumina, in which the microsized core was designed to provide the high flowability and the amorphous shell to promote sintering due to its high activity. The coated powder was pressed into disk samples and sintered. The samples from the coated powder showed significantly higher shrinkage and compressive strength than those from the raw powder, which proved the feasibility of the particle coating method to increase the powder sinterability and part strength. (C) 2018 Elsevier B.V. All rights reserved.
机译:这项研究的目的是检验一种假设,即颗粒涂层可提高陶瓷粉末的可烧结性。该方法是为粘合剂喷射添加剂制造而开发的,但为简化起见,使用压制和烧结路线对其进行了测试。粘合剂喷射增材制造已展示出其制造具有复杂形状和/或定制设计的陶瓷零件的强大能力。当前,通过粘合剂喷射制造的陶瓷零件的密度低并且其机械性能较差。主要原因是粉末原料的可烧结性低。一种新的粉末表面改性方法,即颗粒涂层,被用于提高粉末的烧结性和零件强度。具体地,用无定形氧化铝涂覆粗晶氧化铝颗粒(平均70和10μm),其中微尺寸的芯被设计为提供高流动性,而无定形壳由于其高活性而被设计成促进烧结。将涂覆的粉末压成圆盘样品并烧结。涂覆粉末的样品显示出比原始粉末更高的收缩率和抗压强度,这证明了颗粒涂覆方法提高粉末烧结性和零件强度的可行性。 (C)2018 Elsevier B.V.保留所有权利。

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