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ADVANTAGES AND LIMITATIONS OF 3D PRINTING A DUAL-RIDGED HORN ANTENNA

机译:3D打印双肋角膜天线的优势和局限性

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Conventional and additive manufacturing ( three-dimensional [ 3D] printing) techniques for a dual-ridged horn antenna ( DRHA) are presented. The different aspects of the conventional manufacturing of a DRHA and the limitations incurred during additive manufacturing are discussed in detail. The antenna design was further optimized for fused deposition modeling and was 3D printed using acrylonitrile butadiene styrene ( ABS). The polymer-based print was painted with nickel-based aerosol spray. The coaxial transition is also included in the 3D printed prototype. The antenna was manufactured with the intention of improving the learning and education of electromagnetism and antennas of undergraduate students using a low-cost personal desktop 3D printer. The painted DRHA has a 10 dB return-loss bandwidth of 6621 MHz ( 1905-8526 MHz) with a peak gain of 11 dBi. The average cross-polarization isolation achieved was more than 25 dB. Rapid prototyping was possible with additive manufacturing, and limitations were addressed with conventional machining processes whenever required. This prototype is the first known ABS-based horn antenna with the coaxial transition embedded into it. (C) 2016 Wiley Periodicals, Inc.
机译:介绍了双脊喇叭天线(DRHA)的常规和增材制造(三维[3D]打印)技术。详细讨论了DRHA常规制造的不同方面以及增材制造期间的局限性。进一步优化了天线设计以进行熔融沉积建模,并使用丙烯腈丁二烯苯乙烯(ABS)进行了3D打印。用镍基气雾剂喷涂聚合物基印刷品。同轴过渡也包括在3D打印原型中。制造该天线的目的是使用低成本的个人台式3D打印机改善电磁学和大学生天线的学习和教育。喷涂的DRHA的10 dB回波损耗带宽为6621 MHz(1905-8526 MHz),峰值增益为11 dBi。所获得的平均交叉极化隔离度超过25 dB。增材制造可以实现快速原型制作,并且在需要时可以通过常规机加工工艺解决其局限性。该原型是第一个已知的基于ABS的喇叭天线,其同轴过渡嵌入其中。 (C)2016威利期刊公司

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