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3D-printed pumpkin-shaped cavity resonator to determine the complex permittivity of liquids

机译:3D印刷南瓜形腔谐振器,用于确定液体的复杂介电常数

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摘要

This article presents a novel 3D-printed cavity resonator, adopted for the extraction of complex dielectric permittivity of liquid chemicals. The proposed structure consists of a spherical cavity slightly compressed at the poles (similar to a pumpkin), which embeds a thin pipe, where the liquid material under test flows. When the liquid is injected into the pipe, the resonance frequency and the quality factor of the fundamental cavity mode change, and their measurement allows retrieving the complex dielectric permittivity of the liquid. The device is entirely realized by 3D-printing and subsequently metalized by electroplating. The flexibility of the 3D-printing technique allows to implement cavities with unconventional shapes. In this case, the shape is selected to achieve a high quality factor, and it permits to find a good compromise between high sensitivity and good accuracy in the determination of the complex dielectric permittivity. The device was tested with several liquids, and the results were compared to characterizations performed using a commercial coaxial probe.
机译:本文介绍了一种新型的3D打印腔谐振器,用于提取液体化学品的复介电常数。提议的结构由一个球形空腔组成,该空腔在两极处受到轻微压缩(类似于南瓜),该空腔嵌入一根细管,测试中的液体物质在其中流动。当液体被注入管道时,谐振频率和基本腔模的品质因数会发生变化,其测量结果可以恢复液体的复介电常数。该设备完全通过3D打印实现,随后通过电镀进行金属化。3D打印技术的灵活性允许实现非常规形状的空腔。在这种情况下,选择形状是为了获得高质量因数,并允许在测定复介电常数时在高灵敏度和高精度之间找到良好的折衷。使用几种液体对该装置进行了测试,并将结果与使用商用同轴探头进行的表征进行了比较。

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