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Published on: April 27, 2019
Shear and Interface Properties for Unidirectional, Woven, and Hybrid M21 Particle-Toughened Composites
Andrew Seamone1, Anthony Waas1,2, Vipul Ranatunga3
1Department of Aerospace Engineering, University of Michigan, Ann Arbor, MI 48109, USA.
Abstract:
The M21 epoxy matrix is a toughened material designed to enhance the fracture resistance of carbon fiber-reinforced polymers (CFRPs). This study presents an experimental characterization of the shear and interlaminar properties required for validating computational damage models of hybrid laminated composite panels manufactured with the M21 material system. In-plane shear behavior was evaluated using ±45 (PM45) tests, while interlaminar fracture properties were characterized through double cantilever beam (DCB) and end-notched flexure (ENF) tests. The results demonstrate that hybrid laminates exhibit high interfacial fracture toughness, with notably increased resistance observed in woven-woven and unidirectional-woven interface pairs. Parametric studies identified cohesive strength and fracture energy as the dominant parameters governing delamination behavior in numerical simulations. Corresponding values were extracted for each interface type, enabling accurate representation of damage initiation and propagation in finite element models. To the authors' knowledge, this work provides the first experimental dataset for the listed M21-based hybrid unidirectional-woven and woven-woven interfaces, establishing a benchmark for future modeling and simulation of toughened composite structures.
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According to its composition, the matter can be classified into two broad categories — pure substances and mixtures.
A pure substance is a form of matter that has a constant composition throughout with uniform properties. For example, any sample of sucrose has the same composition and same physical properties, such as melting point, color, and sweetness, regardless of the source from which it is isolated.
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