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Qing Qin, Gang Xiong, Lin Han, Yujuan Zhang, Zhen Shen, and Changchun Ge, Enhancing rheology and mechanical properties of DLP 3D-printed Si3N4 materials via composition optimization and gas-pressure sintering, Int. J. Miner. Metall. Mater.,(2025). https://dx.doi.org/10.1007/s12613-025-3106-x
Qing Qin, Gang Xiong, Lin Han, Yujuan Zhang, Zhen Shen, and Changchun Ge, Enhancing rheology and mechanical properties of DLP 3D-printed Si3N4 materials via composition optimization and gas-pressure sintering, Int. J. Miner. Metall. Mater.,(2025). https://dx.doi.org/10.1007/s12613-025-3106-x
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通过成分优化与气压烧结提升DLP 3D打印Si3N4材料的流变及力学性能

摘要: 数字光处理(DLP)技术是制备高精度陶瓷构件的关键增材制造技术。本研究旨在优化Si3N4浆料配方,以提升其在DLP工艺中的性能与成型性,并通过调控粉末粒径分布、光敏树脂单体配比及分散剂种类等关键参数改善浆料流变特性。经优化后,成功制备出固含量50vol%、兼具优异稳定性与低粘度(剪切速率12.8 s⁻¹下为2.48 Pa·s)的光敏Si3N4浆料。进一步探究气压烧结对材料物相组成、微观结构及力学性能的影响,发现该技术使素坯抗弯强度从109 ± 10.24 MPa显著提升至618 ± 42.15 MPa,所得烧结陶瓷硬度达16.59 ± 0.05 GPa,断裂韧性提高至4.45 ± 0.03 MPa·m¹/²。裂纹扩展路径分析表明,​裂纹偏转、裂纹桥接及棒状β-Si3N4晶粒拔出效应是主要增韧机制,可有效抑制裂纹扩展。其中,裂纹偏转与桥接作用尤为显著,大幅提升了Si3N4基体的断裂韧性。本研究通过单体配比优化与气压烧结工艺的协同作用,强化了DLP三维打印技术中Si3N4浆料的综合性能,为制备具有优异力学性能的复杂Si3N4陶瓷构件提供了新思路。

 

Enhancing rheology and mechanical properties of DLP 3D-printed Si3N4 materials via composition optimization and gas-pressure sintering

Abstract: Digital light processing (DLP) is a crucial additive manufacturing (AM) technique for producing high-precision ceramic components. This study aims to optimize the formulation of Si3N4 slurry to enhance both its performance and manufacturability in the DLP process, and investigate key factors such as particle size distribution, photopolymer resin monomer ratios, and dispersant types to improve the slurry's rheological properties. Through these optimizations, a photosensitive Si3N4 slurry with 50vol% solid content was developed, exhibiting excellent stability, and low viscosity (2.48 Pa·s at a shear rate of 12.8 s–1). The effects of gas-pressure sintering on the material's phase composition, microstructure, and mechanical properties were further explored, revealing that this technique significantly increases the flexural strength of the green body from (109 ± 10.24) to (618 ± 42.15) MPa. The sintered ceramics exhibited high hardness ((16.59 ± 0.05) GPa) and improved fracture toughness ((4.45 ± 0.03) MPa·m1/2). Crack trajectory analysis revealed that crack deflection, crack bridging, and the pull-out of rod-like β-Si3N4 grains,are the main toughening mechanisms, which could effectively mitigate crack propagation. Among these mechanisms, crack deflection and bridging were particularly influential, significantly enhancing the fracture toughness of the Si3N4 matrix. Overall, this research highlights how monomer formulation and gas-pressure sintering strengthen the performance of Si3N4 slurry in the DLP three-dimensional printing technique. This work is expected to provide new insights for fabricating complex Si3N4 ceramic components with superior mechanical properties.

 

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