论文标题
磁驱动的垂直铁磁薄片3D方向的平面内调制
Magnetically driven in-plane modulation of the 3D orientation of vertical ferromagnetic flakes
论文作者
论文摘要
已知外部磁场会吸引和表现磁性响应的胶体颗粒。在2D微片纤维的情况下,旋转磁场通常用于以实体方式平行于彼此。由于这种微观结构,所得的复合材料具有增强的机械和功能性能。但是,具有复杂几何形状的零件需要在3D中特异性调整和控制它们的微观结构。尽管已经使用磁取向与顺序或连续铸造相结合的磁取向已经证明了微观结构的可调性,以快速有效的方式控制水平平面中的粒子方向仍然具有挑战性。在这里,我们建议使用旋转的磁阵列来控制分布在未固定的聚合物矩阵中的铁磁镍片的平面方向。我们通过实验研究了以各种频率和进攻角度旋转的磁体的响应,研究了薄片的方向。然后,我们使用comsol从旋转的磁阵列中对磁场进行建模,并预测所得的面内方向。为了验证该方法,我们创建了带有局部片的复合材料。这项工作可以启动反向工程方法,以设计具有复杂的几何形状的复合材料中的微观结构,用于结构或功能应用。
External magnetic fields are known to attract and orient magnetically responsive colloidal particles. In the case of 2D microplatelets, rotating magnetic fields are typically used to orient them parallel to each other in a brick-and-mortar fashion. Thanks to this microstructure, the resulting composites achieve enhanced mechanical and functional properties. However, parts with complex geometry require their microstructure to be specifically tuned and controlled locally in 3D. Although the tunability of the microstructure along the vertical direction has already been demonstrated using magnetic orientation combined with sequential or continuous casting, controlling the particle orientation in the horizontal plane in a fast and effective fashion remains challenging. Here, we propose to use rotating magnetic arrays to control the in-plane orientation of ferromagnetic Nickel flakes distributed in uncured polymeric matrices. We experimentally studied the orientation of the flakes in response to magnets rotating at various frequencies and precessing angles. Then, we used COMSOL to model the magnetic field from rotating magnetic arrays and predicted the resulting in-plane orientations. To validate the approach, we created composites with locally oriented flakes. This work could initiate reverse-engineering methods to design the microstructure in composite materials with intricate geometrical shapes for structural or functional applications.