Martin Joshua J, Riederer Michael S, Krebs Melissa D, Erb Randall M
Department of Mechanical and Industrial Engineering, Northeastern University, Boston, MA 02115, USA.
Soft Matter. 2015 Jan 14;11(2):400-5. doi: 10.1039/c4sm02108h.
Fiber alignment is the defining architectural characteristic of discontinuous fiber composites and is dictated by shear-dominated processing techniques including flow-injection molding, tape-casting, and mold-casting. However, recent colloidal assembly techniques have started to employ additional forces in fiber suspensions that have the potential to change the energy landscape of the shear-dominated alignment in conditions of flow. In this paper, we develop an energetics model to characterize the shear-alignment of rigid fibers under different flow conditions in the presence of magnetic colloidal alignment forces. We find that these colloidal forces can be sufficient to manipulate the energetic landscape and obtain tunable fiber alignment during flow within even small geometries, such as capillary flow. In most conditions, these colloidal forces work to freeze the fiber orientation during flow and prevent the structure disrupting phenomenon of Jeffrey's orbits that has been accepted to rule fiber suspensions under simple shear flow.
纤维排列是不连续纤维复合材料的决定性结构特征,它由包括流动注射成型、流延成型和模铸成型在内的以剪切为主导的加工技术所决定。然而,最近的胶体组装技术已开始在纤维悬浮液中施加额外的力,这些力有可能在流动条件下改变以剪切为主导的排列的能量格局。在本文中,我们开发了一个能量模型,以表征在存在磁性胶体排列力的情况下,刚性纤维在不同流动条件下的剪切排列。我们发现,这些胶体力足以操控能量格局,并在即使是小尺寸的流动(如毛细管流动)中实现可调的纤维排列。在大多数情况下,这些胶体力在流动过程中会使纤维取向固定,并防止出现杰弗里轨道的结构破坏现象,而在简单剪切流动下,杰弗里轨道一直被认为是支配纤维悬浮液的规律。