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Rheology-Assisted Microstructure Control for Printing Magnetic Composites—Material and Process Development

机译:流变辅助微观结构控制用于印刷磁性复合材料 - 材料和工艺开发

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Magnetic composites play a significant role in various electrical and electronic devices. Properties of such magnetic composites depend on the particle microstructural distribution within the polymer matrix. In this study, a methodology to manufacture magnetic composites with isotropic and anisotropic particle distribution was introduced using engineered material formulations and manufacturing methods. An in-house developed material jetting 3D printer with particle alignment capability was utilized to dispense a UV curable resin formulation to the desired computer aided design (CAD) geometry. Formulations engineered using additives enabled controlling the rheological properties and the microstructure at different manufacturing process stages. Incorporating rheological additives rendered the formulation with thixotropic properties suitable for material jetting processes. Particle alignment was accomplished using a magnetic field generated using a pair of permanent magnets. Microstructure control in printed composites was observed to depend on both the developed material formulations and the manufacturing process. The rheological behavior of filler-modified polymers was characterized using rheometry, and the formulation properties were derived using mathematical models. Experimental observations were correlated with the observed mechanical behavior changes in the polymers. It was additionally observed that higher additive content controlled particle aggregation but reduced the degree of particle alignment in polymers. Directionality analysis of optical micrographs was utilized as a tool to quantify the degree of filler orientation in printed composites. Characterization of in-plane and out-of-plane magnetic properties using a superconducting quantum interference device (SQUID) magnetometer exhibited enhanced magnetic characteristics along the direction of field structuring. Results expressed in this fundamental research serve as building blocks to construct magnetic composites through material jetting-based additive manufacturing processes.
机译:磁性复合材料在各种电气和电子设备中发挥着重要作用。这种磁性复合材料的性质取决于聚合物基质内的粒子微观结构分布。在该研究中,使用工程化材料制剂和制造方法引入了制造具有各向同性和各向异性颗粒分布的磁性复合材料的方法。具有颗粒对准能力的内部开发的材料喷射3D打印机用于将UV可固化树脂配方分配给所需的计算机辅助设计(CAD)几何形状。使用添加剂的制剂,使能够控制流变性质和不同制造过程阶段的微观结构。掺入流变源添加剂使配方具有适于材料喷射方法的触变性。使用使用一对永磁体产生的磁场完成粒子对准。观察到印刷复合材料中的微观结构控制取决于发达的材料配方和制造过程。使用流变仪表征填充改性聚合物的流变行为,使用数学模型来得出制剂性质。实验观察与聚合物中观察到的机械行为变化相关。另外观察到,较高的添加剂含量控制颗粒聚集,但降低了聚合物中的颗粒对准程度。光学显微照片的方向分析用作用于量化印刷复合材料中的填充程度的工具。使用超导量子干涉装置(鱿鱼)磁力计的平面内和面外磁性的表征沿着现场结构的方向表现出增强的磁特性。在该基础研究中表达的结果用作构建块,以通过材料喷射基添加剂制造方法构建磁性复合材料。

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