For the establishment of the new design paradigm, an intense experimental and numerical campaign was designed based on three composite materials: IM7/8552, IM7/M91, and WB1010/RTM250. The first two are carbon fiber prepreg systems with a second-generation (8552) and third-generation (M91) epoxy resin, the second containing toughening thermoplastic particles. The third one is a carbon fabric system suitable for RTM processing with a new generation epoxy-based low viscosity resin. DYNACOMP has fulfilled the following objectives:
- The development of novel experimental micro-mechanical characterization techniques, non-existent up to now, for the measurement of the constituent properties, fiber, matrix, and fiber/matrix interface, at high strain rates
- The incorporation of the constitutive behavior determined by the novel micromechanical testing techniques as inputs in advanced multiscale models
- The development of computational multiscale models to predict the strain rate dependent behavior of composite coupons under different loading modes. The outcomes of these simulations have been correlated with the outputs of a vast experimental campaign performed in the three composite systems under study.
The activities carried out have been widely disseminated through:
- The Project webpage:
http://dynacomp-project.eu(se abrirá en una nueva ventana).
- 3 scientific papers in the best academic journals in the field. All publications are open access and copies are available in public repositories (Zenodo, Arxive). 3 more papers are under preparation
- Participation in 7 international scientific conferences
- Organization of 1 Summer School and a final online workshop with >100 attendees
- Several wide dissemination activities to general audiences, including news in social media, in mass media, participation in School visits, Science Fair’s and European’s Research night.
- A project video with the major outcomes and implications of DYNACOMP:
https://www.youtube.com/watch?v=9OgGmHvqWAM&feature=youtu.be(se abrirá en una nueva ventana).
Finally, a number of exploitable results have been identified and the partners are actively looking for paths to bring some of them to market:
- New micromechanical testing methodologies at impact velocities
- New material models for high strain rates
- New matrix formulations for carbon fiber reinforced composites optimized for impact applications
- New certification procedures based on virtual testing
- New mechanical testing methodologies for testing composite coupons at high strain rates
- New methods for damage quantification in composite coupons by X-Ray tomography