Tugirumubano Alexandre, Go Sun Ho, Shin Hee Jae, Kwac Lee Ku, Kim Hong Gun
Institute of Carbon Technology, Jeonju University, Jeollabuk-do 55069, Korea.
Department of Mechanical Engineering, Vision College of Jeonju, Jeollabuk-do 55069, Korea.
Polymers (Basel). 2020 Oct 11;12(10):2325. doi: 10.3390/polym12102325.
In this work, we aimed to manufacture and characterize carbon-fiber-polymer-metal-particles magnetic composites with a sandwichlike structure. The composites were manufactured by stacking the plain woven carbon fiber prepregs (or carbon-fiber-reinforced polymers (CFRP)) and layers of the FeSi particles. The layer of FeSi particles were formed by evenly distributing the FeSi powder on the surface of carbon fiber prepreg sheet. The composites were found to have better magnetic properties when the magnetic field were applied in in-plane (0°) rather than in through-thickness (90°), and the highest saturation magnetization of 149.71 A.m/kg was achieved. The best inductance and permeability of 12.2 μH and 13.08 were achieved. The composites obviously exhibited mechanical strength that was good but lower than that of CFRP composite. The lowest tensile strength and lowest flexural strength were 306.98 MPa and 855.53 MPa, which correspond to 39.58% and 59.83% of the tensile strength and flexural strength of CFRP (four layers), respectively.
在这项工作中,我们旨在制造并表征具有三明治状结构的碳纤维-聚合物-金属颗粒磁性复合材料。这些复合材料通过堆叠平纹编织碳纤维预浸料(或碳纤维增强聚合物(CFRP))和FeSi颗粒层来制造。FeSi颗粒层是通过将FeSi粉末均匀分布在碳纤维预浸料片材表面形成的。研究发现,当磁场沿面内方向(0°)施加而非沿厚度方向(90°)施加时,复合材料具有更好的磁性能,并且实现了149.71 A·m/kg的最高饱和磁化强度。获得了12.2 μH的最佳电感和13.08的最佳磁导率。这些复合材料明显表现出良好的机械强度,但低于CFRP复合材料。最低拉伸强度和最低弯曲强度分别为306.98 MPa和855.53 MPa,分别相当于四层CFRP拉伸强度和弯曲强度的39.58%和59.83%。