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3D打印结合微波烧结制备ZrO装甲陶瓷

Fabrication of ZrO Armor Ceramics by 3D Printing Accompanied with Microwave Sintering.

作者信息

Liang Zhengang, Zhang Dongjiang, Chen Xin, Pang Chunxu, Guo Xuncheng, Feng Yanfei, Xu Xiqing

机构信息

School of Equipment Engineering, Shenyang Ligong University, Shenyang 110159, China.

Xi'an Modern Control Technology Research Institute, Xi'an 710065, China.

出版信息

Materials (Basel). 2024 Dec 10;17(24):6034. doi: 10.3390/ma17246034.

Abstract

Ceramic armor protection with complex shapes is limited by the difficult molding or machining processing, and 3D printing technology provides a feasible method for complex-shaped ceramics. In this study, ZrO ceramics were manufactured by 3D printing accompanied with microwave sintering. In 3D printing, the formula of photosensitive resin was optimized by controlling the content of polyurethane acrylic (PUA) as oligomer, and the photosensitive resin with 50% PUA showed excellent curing performance with a small volume shrinkage of 4.05%, media viscosity of 550 mPa·s, and low critical exposure of 20 mJ/cm. Compared to conventional sintering, microwave sintering was beneficial to dense microstructures with fine grain size, and microwave sintering at 1500 °C was confirmed as an optimized sintering process for the 3D-printed ZrO ceramics, and the obtained ceramics showed a relative density of 98.2% and mean grain size of 2.1 μm. The PUA content further affected the microstructure and mechanical property of the ZrO ceramics. The sample with 10%~40% PUA showed some pores due to the low viscosity and large volume shrinkage of photosensitive resins, and the sample with 60% PUA exhibited an inhomogeneous microstructure with agglomeration, attributed to the high viscosity of photosensitive resins. Finally, the ZrO ceramics via 3D printing with 50% PUA showed superior mechanical properties, whose Vickers hardness was 3.4 GPa, fracture toughness was 7.4 MPa·m, flexure strength was 1038 MPa, and dynamic strength at 1200 s was 4.9 GPa, conducive to the material's employment as armor protection ceramics.

摘要

具有复杂形状的陶瓷装甲防护受到成型或加工困难的限制,而3D打印技术为复杂形状的陶瓷提供了一种可行的方法。在本研究中,通过3D打印并结合微波烧结制备了ZrO陶瓷。在3D打印过程中,通过控制作为低聚物的聚氨酯丙烯酸酯(PUA)的含量来优化光敏树脂配方,含50% PUA的光敏树脂表现出优异的固化性能,体积收缩率小,为4.05%,介质粘度为550 mPa·s,临界曝光量低,为20 mJ/cm。与传统烧结相比,微波烧结有利于形成具有细晶粒尺寸的致密微观结构,1500℃的微波烧结被确认为3D打印ZrO陶瓷的优化烧结工艺,所得陶瓷的相对密度为98.2%,平均晶粒尺寸为2.1μm。PUA含量进一步影响ZrO陶瓷的微观结构和力学性能。含10%~40% PUA的样品由于光敏树脂粘度低和体积收缩大而出现一些孔隙,含60% PUA的样品表现出不均匀的微观结构且有团聚现象,这归因于光敏树脂的高粘度。最后,含50% PUA的3D打印ZrO陶瓷表现出优异的力学性能,其维氏硬度为3.4 GPa,断裂韧性为7.4 MPa·m,弯曲强度为1038 MPa,1200 s时的动态强度为4.9 GPa,有利于该材料用作装甲防护陶瓷。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/11de/11676147/48ea0fac5fdc/materials-17-06034-g001.jpg

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