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Plastic and metal additive manufacturing technologies for microwave passive components up to Ka band

机译:高达Ka波段的微波无源组件的塑料和金属增材制造技术

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This paper illustrates the different possibilities given by additive manufacturing technologies for the creation of passive microwave hardware. The paper more specifically highlights a prototyping scheme where the 3D-printed plastic parts can be used as initial proofs of concept before considering more advanced 3D-printed parts (metal parts, for instance). First, a characterization campaign has been made on common plastics used by a 3D printer using the fused deposition modeling and material jetting (Polyjet (c)) technologies. The impact of the manufacturing strategy (high-speed or high-accuracy) on the part roughness, as well as on the dielectric material permittivity and loss tangent, has been specifically studied at 10 and 16 GHz. Based on a specifically optimized and deeply explained characterization method, the conductivity of a coating based on silver paint has also been characterized on such plastic parts at 10 and 40 GHz. These plastic materials and coating have been used for the creation of quasi-elliptic and tuning-free bandpass filters centered at 6 and 12 GHz and compared with a similar filter made of stainless steel by selective laser melting. Finally, a compact rectangular TE10 to circular TE01 mode converter also undergoes one prototyping step out of plastic before moving to an advanced part made out of stainless steel. This mode converter, which is made in a single part, is designed to operate from 28 to 36 GHz as a tuning-free final demonstrator.
机译:本文说明了增材制造技术为创建无源微波硬件提供的不同可能性。本文更具体地强调了一种原型设计方案,在考虑更高级的3D打印零件(例如金属零件)之前,可以将3D打印的塑料零件用作概念的初步证明。首先,已经使用融合沉积建模和材料喷射(Polyjet(c))技术对3D打印机使用的常见塑料进行了表征活动。在10 GHz和16 GHz上专门研究了制造策略(高速或高精度)对零件粗糙度以及对介电材料介电常数和损耗角正切的影响。基于经过专门优化和详细解释的表征方法,基于银漆的涂料的电导率也已在10 GHz和40 GHz的这种塑料部件上进行了表征。这些塑料材料和涂层已用于创建以6和12 GHz为中心的准椭圆和免调谐带通滤波器,并与通过选择性激光熔化的不锈钢制成的类似滤波器进行了比较。最终,紧凑的矩形TE10到圆形TE01模式转换器也要经过一次成型步骤,该步骤由塑料制成,然后移至由不锈钢制成的高级部件。该模式转换器由一个单独的部件制成,旨在作为免调谐的最终演示器在28至36 GHz的频率下工作。

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