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Combining rapid prototyping techniques in mechanical engineering and electronics for realization of a variable capacitor

机译:结合机械工程和电子领域的快速原型技术,以实现可变电容器

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Purpose - This paper aims to present combination of poly-jet technology and ink-jet technology in a multidisciplinary way in order to exploit advantages of these rapid prototyping techniques in manufacturing a demonstrator device - a variable interdigital capacitor. Design/methodology/approach - The platform of 3D complex geometry, with optimized design and cavity under the capacitor's fingers (plates), was fabricated using Alaris 3D printer, whereas silver conductive segments were fabricated using Dimatix ink-jet printer and thanks to the mechanical flexibility the platform has been covered using these segments. Findings - When one side of the capacitor's structure changes angular position (in the range from 0 to 90°) with reference to the fixed part, the variation in total capacitance is obtained. The total capacitance decreases (in the range from 20.2 to 1.5 pF) with decrease in effective overlapping area for the variation of angular position from 0 to 90° The maximum measured tuning ratio for the proposed design of the variable capacitor was 13.5:1. Research limitations/implications - Presented variable capacitor can be used for detection angular position in the range from 0 to 90°. Practical implications - The new horizon has been opened combining the rapid prototyping equipment in electronics and mechanical engineering in an interdisciplinary way to manufacture, for the first time, variable capacitor using poly-jet and ink-jet technologies. These techniques do not require higher mask counts which makes the fabrication fast and cost-effective. Originality/value - This work, for the first time, demonstrates the combination of ALARIS 30 3D printer and Dimatix DMP-3000 materials deposition printer in order to fabricate the interdigital capacitor with complex 3D geometry. ALARIS 3D printer has been used for manufacturing plastic platform (with the possibility to precisely adjust angular position of one comb related to another) and Dimatix printer has been used to print silver conductive inks on flexible substrates (Kapton film), and this mechanically flexible structure was used to cover capacitor's fingers on the platform (assembly).
机译:目的-本文旨在以多学科的方式介绍多喷射技术和喷墨技术的结合,以便在制造演示器设备(可变叉指电容器)中利用这些快速原型技术的优势。设计/方法/方法-使用Alaris 3D打印机制造了3D复杂几何形状的平台,该平台具有优化的设计和电容器手指(板)下的空腔,而银导电线段则使用Dimatix喷墨打印机制造,这要归功于机械灵活性使用这些部分可以覆盖平台。发现-当电容器结构的一侧相对于固定部分改变角度位置(在0到90°的范围内)时,将获得总电容的变化。随着角位置从0到90°的变化,有效重叠面积的减小,总电容减小(在20.2至1.5 pF的范围内)。可变电容器设计的最大测得调谐比为13.5:1。研究的局限性/意义-提出的可变电容器可用于检测0至90°范围内的角度位置。实际意义-以跨学科的方式结合电子和机械工程中的快速原型设备,开创了新的视野,这是首次使用多喷射和喷墨技术制造可变电容器。这些技术不需要更高的掩模数量,这使得制造快速且具有成本效益。原创性/价值-这项工作首次展示了ALARIS 30 3D打印机和Dimatix DMP-3000材料沉积打印机的组合,以制造具有复杂3D几何形状的叉指式电容器。 ALARIS 3D打印机已用于制造塑料平台(可以精确调整一个梳子与另一个梳子的角度位置),而Dimatix打印机已用于在柔性基板(Kapton膜)上印刷银导电油墨,并且这种机械柔性结构用于覆盖平台(组件)上电容器的手指。

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