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Composite Reinforcement by Magnetic Control of Fiber Density and Orientation

机译:纤维密度磁控控制复合加固和方向

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The flexural rigidity of cylindrical specimens, composed of epoxy reinforced by short, magnetized glass fibers, was enhanced using weak magnetic fields (100 mT). By spatially controlling the magnitude and direction of the field, and thereby the torques and forces acting locally on the fibers, the orientation and concentration of the fillers in the matrix could be tuned prior to curing. Unidirectional alignment of the fibers, achieved using an air-core solenoid, improved the contribution of the fibers to the flexure modulus by a factor of 3. When a ring-shaped permanent magnet was utilized, the glass fibers were migrated preferentially near the rod boundary, and as a result, the contribution of the fibers to the flexure modulus doubled. The fiber length, density, and orientation distributions were extracted by mu CT image analysis, allowing comparison of the experimental flexure modulus to a modified rule of mixtures prediction. The ability to magnetically control the fiber distribution in reinforced composites demonstrated in this study may be applied in the fabrication of complex micro- and macroscale structures with spatially variable anisotropy, allowing features such as crack diversion, strengthening of highly loaded regions, as well as economic management of materials and weight.
机译:由短磁化玻璃纤维增​​强的环氧树脂组成的圆柱形样品的弯曲刚度被使用弱磁场(100 mt)增强。通过在空间控制场的幅度和方向,从而可以在固化之前调谐基质中局部作用的扭矩和力在纤维上作用,取向和填料的取向和浓度。使用空心螺线管实现的纤维的单向对准,通过使用空气芯螺线管来改进纤维对弯曲模量的贡献。当使用环形永磁体时,优先在杆边界附近迁移玻璃纤维因此,纤维对弯曲模量的贡献加倍。通过MU CT图像分析提取纤维长度,密度和取向分布,允许比较实验挠曲模量与修改的混合物预测规则。在本研究中展示的磁性控制纤维分布的能力可以在制造具有空间可变各向异性的复杂的微观和宏观结构的制造中,允许诸如裂纹的特征,加强高负荷区域,以及经济材料和体重管理。

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