Nagarajan Balakrishnan, Wang Yingnan, Taheri Maryam, Trudel Simon, Bryant Steven, Qureshi Ahmed Jawad, Mertiny Pierre
Department of Mechanical Engineering, University of Alberta, Edmonton, AB T6G 1H9, Canada.
Department of Chemistry, University of Calgary, Calgary, AB T2N 1N4, Canada.
Polymers (Basel). 2021 Aug 24;13(17):2843. doi: 10.3390/polym13172843.
Polymer composites containing ferromagnetic fillers are promising for applications relating to electrical and electronic devices. In this research, the authors modified an ultraviolet light (UV) curable prepolymer to additionally cure upon heating and validated a permanent magnet-based particle alignment system toward fabricating anisotropic magnetic composites. The developed dual-cure acrylate-based resin, reinforced with ferromagnetic fillers, was first tested for its ability to polymerize through UV and heat. Then, the magnetic alignment setup was used to orient magnetic particles in the dual-cure acrylate-based resin and a heat curable epoxy resin system in a polymer casting approach. The alignment setup was subsequently integrated with a material jetting 3D printer, and the dual-cure resin was dispensed and cured in-situ using UV, followed by thermal post-curing. The resulting magnetic composites were tested for their filler loading, microstructural morphology, alignment of the easy axis of magnetization, and degree of monomer conversion. Magnetic characterization was conducted using a vibrating sample magnetometer along the in-plane and out-of-plane directions to study anisotropic properties. This research establishes a methodology to combine magnetic field induced particle alignment along with a dual-cure resin to create anisotropic magnetic composites through polymer casting and additive manufacturing.
含有铁磁填料的聚合物复合材料在与电气和电子设备相关的应用中很有前景。在本研究中,作者对紫外光(UV)固化预聚物进行了改性,使其在加热时额外固化,并验证了一种基于永磁体的粒子排列系统用于制造各向异性磁性复合材料。首先测试了用铁磁填料增强的双固化丙烯酸酯基树脂通过紫外线和加热进行聚合的能力。然后,采用聚合物浇铸法,利用磁排列装置使双固化丙烯酸酯基树脂和热固化环氧树脂体系中的磁性颗粒定向排列。随后,将排列装置与材料喷射3D打印机集成,将双固化树脂原位分配并先用紫外线固化,然后进行热后固化。对所得磁性复合材料的填料含量、微观结构形态、易磁化轴的排列以及单体转化率进行了测试。使用振动样品磁强计沿面内和面外方向进行磁性表征,以研究各向异性特性。本研究建立了一种方法,通过聚合物浇铸和增材制造,将磁场诱导的粒子排列与双固化树脂相结合,以制备各向异性磁性复合材料。