Computational anisotropic plasticity for high-rate forming applications
DOI10.1016/0045-7825(95)00983-3zbMath0890.73021OpenAlexW2027233691WikidataQ126778447 ScholiaQ126778447MaRDI QIDQ1372806
Sheila K. Schiferl, Paul J. Maudlin
Publication date: 14 July 1998
Published in: Computer Methods in Applied Mechanics and Engineering (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1016/0045-7825(95)00983-3
large strainquadratic yield functionconstitutive modelingpolar decomposition theoremunrotated material frameanisotropic yield surfacehexagonal-close-packed crystal structurescubic crystal structuresdiscontinuous piecewise yield functionsexplicit multi-dimensional continuum mechanics codesgeometric normal return schemes
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Related Items (6)
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Cites Work
- On the analysis of rotation and stress rate in deforming bodies
- A discussion of stress rates in finite deformation problems
- A discussion of material rotation and stress rate
- Stability and accuracy of differencing methods for viscoplastic models in wavecodes
- Evolution of plastic anisotropy for high-strain-rate computations
- Computational anisotropic plasticity for high-rate forming applications
- An accurate numerical algorithm for stress integration with finite rotations
- A general theory of an elastic-plastic continuum
- Finite rotation effects in numerical integration of rate constitutive equations arising in large-deformation analysis
- An efficient method for determining the effects of mass modifications in damped systems
- Harmonic Dispersion Analysis of Incremental Waves in Uniaxially Prestressed Plastic and Viscoplastic Bars, Plates, and Unbounded Media
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