Sofokleous Paris, Paz Eva, Herraiz-Martínez Francisco Javier
Institute for Research in Technology (IIT), ICAI School of Engineering, Comillas Pontifical University, Santa Cruz de Marcenado 26, 28015 Madrid, Spain.
Mechanical Engineering Department, ICAI School of Engineering, Comillas Pontifical University, Alberto Aguilera 25, 28015 Madrid, Spain.
Polymers (Basel). 2024 Sep 13;16(18):2589. doi: 10.3390/polym16182589.
Rapid technological advancements in recent years have opened the door to innovative solutions in the field of telecommunications and wireless systems; thus, new materials and manufacturing methods have been explored to satisfy this demand. This paper aims to explore the application of low-cost, commercially available 3D-printed ceramic/polymer composite filaments to design dielectric resonators (DRs) and check their suitability for use in high-frequency applications. Three-dimensional printing was used to fabricate the three-dimensional dielectric resonant prototypes. The filaments were characterized in terms of their thermal and mechanical properties and quality of printability. Additionally, the filaments' dielectric properties were analyzed, and the prototypes were designed and simulated for a target frequency of ~2.45 GHz. Afterward, the DRs were successfully manufactured using the 3D printing technique, and no post-processing techniques were used in this study. A simple and efficient feeding method was used to finalize the devices, while the printed DRs' reflection coefficient (S) was measured. Results on prototype size, manufacture ease, printability, cost per volume, and bandwidth (BW) were used to evaluate the materials' suitability for high-frequency applications. This research presents an easy and low-cost manufacturing process for DRs, opening a wide range of new applications and revolutionizing the manufacturing of 3D-printed high-frequency devices.
近年来,快速的技术进步为电信和无线系统领域的创新解决方案打开了大门;因此,人们探索了新的材料和制造方法来满足这一需求。本文旨在探讨低成本、市售的3D打印陶瓷/聚合物复合长丝在设计介质谐振器(DR)中的应用,并检验其在高频应用中的适用性。采用三维打印技术制造三维介质谐振原型。对长丝的热性能、机械性能和可打印质量进行了表征。此外,分析了长丝的介电性能,并针对约2.45GHz的目标频率对原型进行了设计和模拟。之后,使用3D打印技术成功制造了DR,本研究未使用后处理技术。采用一种简单高效的馈电方法完成器件制作,同时测量了打印DR的反射系数(S)。根据原型尺寸、制造难易程度、可打印性、单位体积成本和带宽(BW)等结果来评估材料在高频应用中的适用性。本研究提出了一种简单且低成本的DR制造工艺,开启了广泛的新应用,并彻底改变了3D打印高频器件的制造。