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Dielectric characterization of 3D printed materials with a confocal Fabry Perot resonator for space utilization

机译:利用共焦Fabry Perot谐振器对3D打印材料进行介电表征,以利用空间

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摘要

3D printing has enabled the advancement of rapid prototyping, reduced interface structures, and model to production components with no hand labor. Materials from titanium to plastic and even sugars/proteins have been 3D printed. Advancements in the industry have even led to extruders capable of mixing conductive and dielectric materials in a single step process. This has obvious applications for both antennas and metamaterial tailored Electro-Magnetic structures. However, to model future antenna concepts, these materials must be characterized. Similar to mechanical testing, sample printing orientation must also be considered as the quality of the finish changes with different orientations and may impact higher frequencies. This paper will show one process of characterizing a sheet of printed paper using a focused Gaussian beam Fabry Perot resonator that utilizes a spot size of sufficient size to compensate for printing inconsistencies or metamaterial features and represents the structure as a whole.
机译:3D打印使快速原型开发,减少的界面结构和无需人工的生产零件建模成为可能。从钛到塑料,甚至糖/蛋白质的材料都已经过3D打印。行业的进步甚至导致挤出机能够在单步过程中混合导电和介电材料。这对于天线和超材料定制的电磁结构都有明显的应用。但是,为了模拟未来的天线概念,必须对这些材料进行特征化。与机械测试类似,也必须考虑样品的打印方向,因为完成后的质量会随着方向的不同而变化,并可能影响较高的频率。本文将展示一种使用聚焦的高斯光束Fabry Perot谐振器表征一张打印纸的过程,该谐振器利用足够大的光斑大小来补偿打印不一致性或超材料特征,并代表整个结构。

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