Abstract
Adding brittle fibers to a brittle matrix can create a composite which is substantially tougher than the monolithic matrix by providing mechanisms for energy dissipation during crack propagation. A model based on probabilistic principles has been developed to calculate the increased energy absorption during fracture for a britle matrix reinforced with very short, poorly bonded fibers. This model, previously developed for planar fiber orientations, is extended to consider the three-dimensional fiber orientations which may occur during composite fabrication. The fiber pull-out energy is assumed to dominate other fracture energy terms, and simple parametric studies are given to demonstrate the effect of fiber orientation, fiber length, fiber diameter, and fiber-matrix interfacial shear stress. In particular, the fiber orientation effects may be grouped into an effective 'orientation parameter'.
| Original language | English |
|---|---|
| Pages (from-to) | GT125 7p |
| Journal | American Society of Mechanical Engineers (Paper) |
| State | Published - 1989 |
| Event | Preprint - American Society of Mechanical Engineers - Toronto, Ont, Can Duration: Jun 4 1989 → Jun 8 1989 |
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