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Yannis P. Korkolis

Researcher at Ohio State University

Publications -  109
Citations -  2013

Yannis P. Korkolis is an academic researcher from Ohio State University. The author has contributed to research in topics: Digital image correlation & Tension (physics). The author has an hindex of 21, co-authored 94 publications receiving 1400 citations. Previous affiliations of Yannis P. Korkolis include University of Texas at Austin & University of New Hampshire.

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Inflation and burst of anisotropic aluminum tubes for hydroforming applications

TL;DR: In this paper, the performance of different anisotropic yield functions in predicting the response and burst of tubes loaded under combined internal pressure and axial load was evaluated, and the results were used to calibrate the non-quadratic yield functions of Hosford and Karafillis-Boyce.
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Dual-phase steel sheets under cyclic tension–compression to large strains: Experiments and crystal plasticity modeling

TL;DR: In this article, a physically-based crystal plasticity model was developed for the prediction of cyclic tension-compression deformation of multi-phase materials, specifically dual-phase (DP) steels.
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Path-dependent failure of inflated aluminum tubes

TL;DR: In this paper, a set of Al-6260-T4 tubes were loaded along orthogonal stress paths to failure and the results were compared to those of the corresponding radial paths.
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Determination of the fraction of plastic work converted into heat in metals

TL;DR: In this article, a new approach for measuring the fraction of plastic work that is converted into heat (also known as the Inelastic Heat Fraction, IHF or the Taylor-Quinney coefficient) during the plastic deformation of metals is proposed.
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Inflation and burst of aluminum tubes. Part II: An advanced yield function including deformation-induced anisotropy

TL;DR: In this article, the formability of aluminum tubes was investigated using a combination of experimental and numerical approaches, where the tubes were loaded to failure under combined internal pressure and axial load along radial paths in the engineering stress space.