光致聚合物
3D打印
材料科学
自愈水凝胶
流变学
聚合物
机械工程
粘度
计算机科学
纳米技术
工艺工程
复合材料
聚合
高分子化学
工程类
作者
Niklas F. König,Marcus Reuter,Manfred Reuß,Christian Kromer,Martin Herder,Yves Garmshausen,Baraa Asfari,Eric Israel,Luana Paola Borges de Lima,Nishit Puvati,J. Dusty Leonhard,Linos Madalo,Steffen Heuschkel,Mark Engelhard,Yousef Arzhangnia,Dirk Radzinski
标识
DOI:10.1002/adma.202413391
摘要
Abstract Xolography is a volumetric 3D printing technique utilizing intersecting light beams within a volume of photopolymer for a spatially controlled photopolymerization. Unlike layer‐based methods, Xolography creates structures continuously within a closed photopolymer vat, eliminating the prevalent need for support structures and allowing full geometrical freedom at high printing speeds. The volumetric working principle does not rely on gravity, making Xolography an outstanding technology for additive manufacturing under microgravity conditions as illustrated in a set of experiments during a parabolic flight campaign. The microgravity environment obviates the need for rheology control of resins, enabling the use of low‐viscosity formulations (e.g., 11 mPa s) while maintaining the fast and precise 3D printing of acrylic polymer resins and hydrogels. Xolography's speed and reliability facilitate rapid iterations of a print task between Earth's gravity and microgravity conditions. This capability positions Xolography as an ideal tool for material research and manufacturing in space, offering significant cost and efficiency advantages over traditional methods.
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