Simulating brittle and ductile response of alumina ceramics under dynamic loading

Journal Article (2019)
Authors

Erik Simons (TU Delft - Applied Mechanics)

Jaap Weerheijm (TNO, TU Delft - Applied Mechanics)

Lambertus J. Sluys (TU Delft - Materials- Mechanics- Management & Design)

Research Group
Applied Mechanics
Copyright
© 2019 E.C. Simons, J. Weerheijm, Lambertus J. Sluys
More Info
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Publication Year
2019
Language
English
Copyright
© 2019 E.C. Simons, J. Weerheijm, Lambertus J. Sluys
Research Group
Applied Mechanics
Volume number
216
Pages (from-to)
1-20
DOI:
https://doi.org/10.1016/j.engfracmech.2019.05.013
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Abstract

Alumina ceramic is often used in armour systems. This material is known to have a brittle response under tensile loading, while a ductile response is found when sufficiently high pressures are reached. During projectile impact a ceramic material experiences both tensile loading and high pressures, hence fails in both a brittle and ductile way. Properly capturing the ceramic failure in a single material model remains challenging. A viscosity regularized Johnson-Holmquist-2 model has been used to simulate dynamic loading on alumina ceramic. The simulations show that the brittle and ductile nature of the material can not be captured simultaneously in the current material model. A new failure strain formulation is proposed where the behaviour under tensile and compressive loading can be controlled independently. This allows to properly capture both the brittle and ductile response of the material in a single constitutive framework, with a single set of model parameters.

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