Yang Guang, Tetik Halil, Weker Johanna Nelson, Xiao Xianghui, Lei Shuting, Lin Dong
Industrial and Manufacturing Systems Engineering, Kansas State University, Manhattan, Kansas 66506, USA.
Stanford Synchrotron Radiation Lightsource, SLAC National Accelerator Laboratory, Menlo Park, California 94025, USA.
Rev Sci Instrum. 2022 Jan 1;93(1):013703. doi: 10.1063/5.0077141.
Three dimensional freeze printing (3DFP) combines the advantages of freeze casting and additive manufacturing to fabricate multifunctional aerogels. Freeze casting is a cost-effective, efficient, and versatile method capable of fabricating micro-scale porous structures inside the aerogels for many different applications. The 3DFP provided the capability of fabricating highly customized geometries with controlled microporous structures as well. However, there are still many unexplained phenomena and features because of the complexity of post-processes and indirect observation methods. This study demonstrates the design and construction of the in situ imaging systems, which use the x-ray synchrotron radiography to observe freeze casting and 3DFP processes. With the advantages provided by the in situ x-ray imaging techniques, the ice crystal growth with its unique lamellar structures can be observed during the freeze casting process. The movement of freeze front, material deposition, and growth of ice crystals can also be visualized during the inkjet-based 3DFP process.
三维冷冻打印(3DFP)结合了冷冻铸造和增材制造的优点,用于制造多功能气凝胶。冷冻铸造是一种经济高效且通用的方法,能够在气凝胶内部制造微尺度多孔结构,适用于许多不同的应用。3DFP还具备制造具有可控微孔结构的高度定制几何形状的能力。然而,由于后处理过程的复杂性和间接观察方法,仍存在许多无法解释的现象和特征。本研究展示了原位成像系统的设计与构建,该系统利用X射线同步辐射成像来观察冷冻铸造和3DFP过程。借助原位X射线成像技术的优势,可以在冷冻铸造过程中观察到具有独特层状结构的冰晶生长。在基于喷墨的3DFP过程中,还可以可视化冷冻前沿的移动、材料沉积和冰晶生长情况。