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The degradation of a thermally-aged bismaleimide-glass fiber composite system was assessed via spectroscopic methods.
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Both these methods and material systems provide effective means for integrating the nanomaterial constituents into traditional fiber composite systems.
Experimental data on failure surface orientations have been obtained for carbon fiber composite systems based on both thermoplastic and thermosetting matrix materials.
The effects of halogen-free flame retardants (FR) such as intumescent ammonium polyphosphate (APP) and melamine cyanurate (MC) on the flammability and mechanical properties of epoxy/glass fiber composite systems were studied.
They form the key tension-resisting element of a complex fiber-composite system that has a tissue-specific hierarchical structure linked to mechanical demands.
Interfacial bonding between the carbon fiber and a thermoplastic polyimide matrix is evaluated using a single fiber composite test system.
We investigated the encapsulation phenomena of glass fibers for a ternary composite system of glass fiber, polycarbonate and polypropylene by impregnating fibers with a selected resin using a newly developed process.
Two carbon fiber composite lap joint systems are tested: woven (fabric) laminated and uni-tape laminated orthotropic plates.
The model is phenomenological, although inspired by micromechanical considerations of load transfer between the matrix and fiber phases of a composite system.
Here we overcome this limitation by attaching a beam of soft elastomer to the functional fiber, thereby creating a composite system which exhibits in-drop coiling and carries information while being ultra-extensible.
The processing temperature dependent microstructure, micro- and macro-mechanical properties of a SiC fiber reinforced SiC matrix composite system that was fabricated by polymer impregnation and pyrolysis were studied by novel characterization methods like transmission electron microscopy, nanoindentation, fiber push-in, micropillar splitting, etc.
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