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用于熔融沉积3D打印的高介电常数复合长丝的制造

Fabrication of Composite Filaments with High Dielectric Permittivity for Fused Deposition 3D Printing.

作者信息

Wu Yingwei, Isakov Dmitry, Grant Patrick S

机构信息

Department of Materials, University of Oxford, Parks Road, Oxford OX1 3PH, UK.

出版信息

Materials (Basel). 2017 Oct 23;10(10):1218. doi: 10.3390/ma10101218.

Abstract

Additive manufacturing of complex structures with spatially varying electromagnetic properties can enable new applications in high-technology sectors such as communications and sensors. This work presents the fabrication method as well as microstructural and dielectric characterization of bespoke composite filaments for fused deposition modeling (FDM) 3D printing of microwave devices with a high relative dielectric permittivity ϵ = 11 in the GHz frequency range. The filament is composed of 32 vol % of ferroelectric barium titanate (BaTiO 3 ) micro-particles in a polymeric acrylonitrile butadiene styrene (ABS) matrix. An ionic organic ester surfactant was added during formulation to enhance the compatibility between the polymer and the BaTiO 3 . To promote reproducible and robust printability of the fabricated filament, and to promote plasticity, dibutyl phthalate was additionally used. The combined effect of 1 wt % surfactant and 5 wt % plasticizer resulted in a uniform, many hundreds of meters, continuous filament of commercial quality capable of many hours of uninterrupted 3D printing. We demonstrate the feasibility of using the high dielectric constant filament for 3D printing through the fabrication of a range of optical devices. The approach herein may be used as a guide for the successful fabrication of many types of composite filament with varying functions for a broad range of applications.

摘要

增材制造具有空间变化电磁特性的复杂结构,可在通信和传感器等高技术领域实现新应用。本文介绍了用于GHz频率范围内相对介电常数ε = 11的微波器件熔融沉积建模(FDM)3D打印的定制复合长丝的制造方法以及微观结构和介电特性。该长丝由32体积%的铁电钛酸钡(BaTiO₃)微粒分散在聚合物丙烯腈-丁二烯-苯乙烯(ABS)基体中组成。在配方中添加了一种离子有机酯表面活性剂,以增强聚合物与BaTiO₃之间的相容性。为了提高所制备长丝的可重复且稳定的可打印性,并提高可塑性,还使用了邻苯二甲酸二丁酯。1 wt%表面活性剂和5 wt%增塑剂的联合作用产生了具有商业质量的均匀、长达数百米的连续长丝,能够进行数小时的不间断3D打印。我们通过制造一系列光学器件,证明了使用高介电常数长丝进行3D打印的可行性。本文所述方法可作为成功制造多种具有不同功能的复合长丝以用于广泛应用的指南。

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