Digital light processing 3D printing of porous ceramics: A systematic analysis from a debinding perspective

IF 10.3 1区 工程技术 Q1 ENGINEERING, MANUFACTURING
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Abstract

Using 3D printing technologies in manufacturing ceramic structures has received much attention. The requirements for advancing these technologies, especially vat photopolymerization, include segmented steps such as the optimization of ceramic suspension, the process parameters of 3D printing, and the thermal treatment conditions. Although 3D printing for dense ceramics has been studied extensively, more is needed to optimize 3D printing processes for fabricating porous ceramics. Mainly because the pore properties of porous ceramics determine their performance, an in-depth investigation is needed to determine how the thermal treatment conditions control these pore properties. To bridge this gap, in this study, ceramic (lead zirconate titanate) green bodies embedding pore-forming agents (polymethylmethacrylate) were fabricated by DLP (Digital Light Processing) 3D printing. They were debinded in a vacuum atmosphere at different heating rates (0.5, 1, and 2℃/min) for fabricating porous ceramics. These processes were followed by air debinding and sintering steps. Our findings revealed that the optimal heating rate condition produces the lowest shrinkages, surface roughness, and an improved stair effect. More importantly, this optimal condition led to porous ceramics without cracks and with pores that matched well with the size distribution of the pore-forming agent, which was used as a starting material. This systematic approach can be extended to combinations of various types of ceramics and pore-forming agents. Therefore, this study provides a guideline for determining the optimal heating rate condition to manufacture porous ceramics by DLP 3D printing technology.

多孔陶瓷的数字光处理 3D 打印:从脱胶角度进行系统分析
利用三维打印技术制造陶瓷结构已受到广泛关注。推进这些技术(尤其是大桶光聚合)的要求包括分段步骤,如优化陶瓷悬浮液、3D 打印的工艺参数和热处理条件。尽管针对致密陶瓷的三维打印技术已经得到了广泛的研究,但在优化制造多孔陶瓷的三维打印工艺方面还有更多工作要做。主要是因为多孔陶瓷的孔隙特性决定了其性能,因此需要深入研究热处理条件如何控制这些孔隙特性。为了弥补这一差距,本研究采用 DLP(数字光处理)3D 打印技术制造了嵌入孔隙形成剂(聚甲基丙烯酸甲酯)的陶瓷(锆钛酸铅)绿色体。它们在真空环境中以不同的加热速率(0.5、1 和 2℃/分钟)脱模,以制造多孔陶瓷。随后进行空气脱胶和烧结步骤。我们的研究结果表明,最佳加热速率条件下产生的收缩率和表面粗糙度最低,阶梯效应也有所改善。更重要的是,这种最佳条件下产生的多孔陶瓷没有裂缝,孔隙与作为起始材料的孔隙形成剂的尺寸分布非常吻合。这种系统化的方法可以扩展到各种类型的陶瓷和孔隙形成剂的组合。因此,本研究为确定通过 DLP 3D 打印技术制造多孔陶瓷的最佳加热速率条件提供了指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Additive manufacturing
Additive manufacturing Materials Science-General Materials Science
CiteScore
19.80
自引率
12.70%
发文量
648
审稿时长
35 days
期刊介绍: Additive Manufacturing stands as a peer-reviewed journal dedicated to delivering high-quality research papers and reviews in the field of additive manufacturing, serving both academia and industry leaders. The journal's objective is to recognize the innovative essence of additive manufacturing and its diverse applications, providing a comprehensive overview of current developments and future prospects. The transformative potential of additive manufacturing technologies in product design and manufacturing is poised to disrupt traditional approaches. In response to this paradigm shift, a distinctive and comprehensive publication outlet was essential. Additive Manufacturing fulfills this need, offering a platform for engineers, materials scientists, and practitioners across academia and various industries to document and share innovations in these evolving technologies.
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