通过控制氧化锆含量和图案的4D打印复杂陶瓷结构

Zhicheng Rong, Chang Liu, Yingbin Hu
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引用次数: 2

摘要

近年来,人们越来越关注将三维打印与场(如磁场)相结合或创新新方法,以充分发挥3D打印在制造高质量零件和加工纳米级复合材料方面的潜力。在所有的创新方法中,四维(4D)打印已被证明是一种从简单结构中创建动态部件的有效方法。在4D打印中常见的进料材料包括形状记忆水凝胶、形状记忆聚合物和形状记忆合金。然而,由于陶瓷材料固有的脆性,很少有人尝试通过4D打印将陶瓷材料塑造成复杂的结构。面对这一问题,本研究旨在填补4D打印与复杂陶瓷结构制造之间的空白。受膨胀和收缩诱导的自折叠的启发,创新了一种4D打印方法,通过控制ZrO2的含量和图案来增加陶瓷结构的额外形状变化。实验结果表明,通过刻意控制ZrO2含量和图案,3d打印陶瓷零件在烧结过程中会发生弯曲和扭转。为了证明这种方法的能力,制作了更复杂的结构(如花状结构)。此外,通过将铁掺入PDMS-ZrO2油墨中,对具有磁性行为的功能部件进行了4d打印。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
4D Printing of Complex Ceramic Structures via Controlling Zirconia Contents and Patterns
In recent years, more and more attentions have been attracted on integrating three-dimensional (3D) printing with fields (such as magnetic field) or innovating new methods to reap the full potential of 3D printing in manufacturing high-quality parts and processing nano-scaled composites. Among all of newly innovated methods, four-dimensional (4D) printing has been proved to be an effective way of creating dynamic components from simple structures. Common feeding materials in 4D printing include shape memory hydrogels, shape memory polymers, and shape memory alloys. However, few attempts have been made on 4D printing of ceramic materials to shape ceramics into intricate structures, owing to ceramics’ inherent brittleness nature. Facing this problem, this investigation aims at filling the gap between 4D printing and fabrication of complex ceramic structures. Inspired by swelling-and-shrinking-induced self-folding, a 4D printing method is innovated to add an additional shape change of ceramic structures by controlling ZrO2 contents and patterns. Experimental results evidenced that by deliberately controlling ZrO2 contents and patterns, 3D-printed ceramic parts would undergo bending and twisting during the sintering process. To demonstrate the capabilities of this method, more complex structures (such as a flower-like structure) were fabricated. In addition, functional parts with magnetic behaviors were 4D-printed by incorporating iron into the PDMS-ZrO2 ink.
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CiteScore
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