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Mechanical behavior of porous Si3N4 ceramics manufactured with 3D printing technology

机译:用3D印刷技术制造多孔Si3N4陶瓷的力学行为

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摘要

The paper focuses on experimental measurement and analytical and numerical modeling of the elastic moduli of porous Si3N4 ceramics obtained by 3D printing and pressureless sintering. The pores in such a material have complex irregular shape and porosity varies over a wide range (up to 50%), depending on the technological parameters used. For analytical modeling, we use effective field methods (Mori-Tanaka-Benveniste and Maxwell homogenization schemes) recently developed for pores of superspherical shape. For FEM simulation, we used microstructures generated by overlapping solid spheres and overlapping spherical pores. It is shown that elastic properties of ceramics are largely determined by the granular structure and the concave pore shape, which have been observed in the ceramics microstructure after sintering of the 3D-printed powder green bodies.
机译:本文侧重于采用3D印刷和无压烧结获得的多孔Si3N4陶瓷弹性模量的实验测量和分析和数值模型。 这种材料中的孔具有复杂的不规则形状,并且孔隙率在宽范围内变化(高达50%),这取决于所使用的技术参数。 对于分析建模,我们使用有效的现场方法(Mori-Tanaka-Benveniste和Maxwell均质化方案)最近为超球形状开发的。 对于有限元模拟,我们使用了通过重叠的固体球和重叠球孔产生的微结构。 结果表明,陶瓷的弹性性质主要由颗粒结构和凹孔形状决定,该孔结构在陶瓷微观结构中观察到3D印刷粉末生坯烧结后已经观察到。

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