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如何提高非氧化物陶瓷光固化3D打印过程中的固化能力:综述

How to Improve the Curing Ability during the Vat Photopolymerization 3D Printing of Non-Oxide Ceramics: A Review.

作者信息

Gao Xiong, Chen Jingyi, Chen Xiaotong, Wang Wenqing, Li Zengchan, He Rujie

机构信息

Institute of Advanced Structure Technology, Beijing Institute of Technology, Beijing 100081, China.

出版信息

Materials (Basel). 2024 May 29;17(11):2626. doi: 10.3390/ma17112626.

Abstract

Vat photopolymerization (VP), as an additive manufacturing process, has experienced significant growth due to its high manufacturing precision and excellent surface quality. This method enables the fabrication of intricate shapes and structures while mitigating the machining challenges associated with non-oxide ceramics, which are known for their high hardness and brittleness. Consequently, the VP process of non-oxide ceramics has emerged as a focal point in additive manufacturing research areas. However, the absorption, refraction, and reflection of ultraviolet light by non-oxide ceramic particles can impede light penetration, leading to reduced curing thickness and posing challenges to the VP process. To enhance the efficiency and success rate of this process, researchers have explored various aspects, including the parameters of VP equipment, the composition of non-oxide VP slurries, and the surface modification of non-oxide particles. Silicon carbide and silicon nitride are examples of non-oxide ceramic particles that have been successfully employed in VP process. Nonetheless, there remains a lack of systematic induction regarding the curing mechanisms and key influencing factors of the VP process in non-oxide ceramics. This review firstly describes the curing mechanism of the non-oxide ceramic VP process, which contains the chain initiation, chain polymerization, and chain termination processes of the photosensitive resin. After that, the impact of key factors on the curing process, such as the wavelength and power of incident light, particle size, volume fraction of ceramic particles, refractive indices of photosensitive resin and ceramic particles, incident light intensity, critical light intensity, and the reactivity of photosensitive resins, are systematically discussed. Finally, this review discusses future prospects and challenges in the non-oxide ceramic VP process. Its objective is to offer valuable insights and references for further research into non-oxide ceramic VP processes.

摘要

作为一种增材制造工艺,光聚合反应(VP)因其高制造精度和出色的表面质量而取得了显著发展。这种方法能够制造复杂的形状和结构,同时缓解了与非氧化物陶瓷相关的加工难题,非氧化物陶瓷以其高硬度和脆性而闻名。因此,非氧化物陶瓷的VP工艺已成为增材制造研究领域的一个焦点。然而,非氧化物陶瓷颗粒对紫外光的吸收、折射和反射会阻碍光的穿透,导致固化厚度减小,并给VP工艺带来挑战。为了提高该工艺的效率和成功率,研究人员从多个方面进行了探索,包括VP设备的参数、非氧化物VP浆料的成分以及非氧化物颗粒的表面改性。碳化硅和氮化硅是非氧化物陶瓷颗粒的例子,它们已成功应用于VP工艺。尽管如此,对于非氧化物陶瓷VP工艺的固化机理和关键影响因素仍缺乏系统的归纳。本文首先描述了非氧化物陶瓷VP工艺的固化机理,其中包括光敏树脂的链引发、链聚合和链终止过程。之后,系统地讨论了关键因素对固化过程的影响,如入射光的波长和功率、颗粒尺寸、陶瓷颗粒的体积分数、光敏树脂和陶瓷颗粒的折射率、入射光强度、临界光强度以及光敏树脂的反应活性。最后,本文讨论了非氧化物陶瓷VP工艺的未来前景和挑战。其目的是为进一步研究非氧化物陶瓷VP工艺提供有价值的见解和参考。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2f63/11173736/40dc970bc686/materials-17-02626-g001.jpg

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