Abstract
An intralaminar damage model, based on a continuum damage mechanics approach, is presented to model the damage mechanisms occurring in carbon fibre composite structures incorporating fibre tensile and compressive breakage, matrix tensile and compressive fracture, and shear failure. The damage model, together with interface elements for capturing interlaminar failure, is implemented in a finite element package and used in a detailed finite element model to simulate the response of a stiffened composite panel to low-velocity impact. Contact algorithms and friction between delaminated plies were included, to better simulate the impact event. Analyses were executed on a high performance computer (HPC) cluster to reduce the actual time required for this detailed numerical analysis. Numerical results relating to the various observed interlaminar damage mechanisms, delamination initiation and propagation, as well as the model's ability to capture post-impact permanent indentation in the panel are discussed. Very good agreement was achieved with experimentally obtained data of energy absorbed and impactor force versus time. The extent of damage predicted around the impact site also corresponded well with the damage detected by non destructive evaluation of the tested panel.
Original language | English |
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Pages (from-to) | 737-749 |
Number of pages | 13 |
Journal | Compos Part A Appl Sci Manuf |
Volume | 41 |
Issue number | 6 |
DOIs | |
Publication status | Published - 2010 |
Externally published | Yes |
Keywords
- B. Delamination B. Fracture B. Impact behaviour C. Finite element analysis (FEA) Carbon fibers Composite structures Continuum damage mechanics Damage detection Delamination Elasticity Fracture Fracture mechanics Functionally graded materials Laminates Steel sheet Structure (composition) Carbon fibre composites Compressive fracture Contact algorithms Continuum damage Damage mechanism Damage model Delamination initiation Finite element analysis Finite element models Finite element packages High performance computers Impact behaviour Impact events Impact site Impactors Interface elements Interlaminar damage Interlaminar failures Low velocity impact Low-velocity impact damage matrix Non destructive evaluation Numerical results Shear failure Stiffened composite panel Finite element method