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VERSION:2.0
PRODID:-//DTU.dk//NONSGML DTU.dk//EN
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BEGIN:VEVENT
DTSTART:20211109T090000Z
DTEND:20211109T094500Z
SUMMARY:DCAMM seminar - FFT-based Polycrystal Plasticity Modelling: New Implementations and Applications
DESCRIPTION:<p><span>A DCAMM seminar will be presented by</span></p>\n<p style="margin-bottom: 0.0001pt; text-align: center;"><strong><span><br />\nSenior Scientist Ricardo A Lebensohn<br />\nLos Alamos National Laboratory, Los Alamos<br />\nNew Mexico, USA<br />\n</span></strong></p>\n&nbsp;&nbsp;\n<p style="margin-top: 0cm; margin-right: 0cm; margin-bottom: 0.0001pt; text-align: justify;"><strong><span>Abstract:<br />\n<br />\n</span></strong><span style="text-align: left;">Crystal plasticity (CP) models are increasingly used in engineering applications to obtain microstructure-sensitive mechanical response of polycrystalline materials. These models require a proper consideration of the single crystal deformation mechanisms, a representative description of the microstructure, and an appropriate scheme to connect the microstates with the macroscopic response. Full-field Fast Fourier Transform (FFT)-based methods, originally proposed by Moulinec and Suquet [1] for composites and extended by us to poly-</span><span style="text-align: left;">crystals [2] are attractive due to their relative higher efficiency compared with CP-Finite Elements, and their direct use of voxelized microstructural images. In this talk, we will report recent progress on FFT-based polycrystal plasticity, with emphasis in novel implementations, including large-strain elasto-visco-plasticity, strain-gradient plasticity, creep, and dynamic deformation/inertial effects.<br />\n</span><span style="text-align: left;">We will show applications of FFT-based methods to micromechanics of nano-metallic laminates (NMLs), creep lifetime predictions of steels, and integration with 3-D characterization methods.<br />\n<br />\n</span><span style="text-align: left;">[1] Moulinec, H., Suquet, P., 1998. A numerical method for computing the overall response of nonlinear composites with complex microstructure.&nbsp;</span><span style="text-align: left;">Computer Methods in Applied Mechanics and Engineering 157, 69-94.<br />\n</span><span style="text-align: left;">[2] Lebensohn, R.A., 2001. N-site modelling of a 3D viscoplastic polycrystal using Fast Fourier Transform. Acta Materialia 49, 2723-2737.</span></p>\n<p style="margin-top: 0cm; margin-right: 0cm; margin-bottom: 0.0001pt; text-align: justify;"><span style="text-align: left;">\n<br />\n</span></p>\n<p style="text-align: justify;"><span style="color: black;"></span><span>Danish pastry, coffee and tea will e served 15 minutes before the seminar starts.<br />\n<br />\nAll interested persons are invited</span></p>
X-ALT-DESC;FMTTYPE=text/html:<p><span>A DCAMM seminar will be presented by</span></p>\n<p style="margin-bottom: 0.0001pt; text-align: center;"><strong><span><br />\nSenior Scientist Ricardo A Lebensohn<br />\nLos Alamos National Laboratory, Los Alamos<br />\nNew Mexico, USA<br />\n</span></strong></p>\n&nbsp;&nbsp;\n<p style="margin-top: 0cm; margin-right: 0cm; margin-bottom: 0.0001pt; text-align: justify;"><strong><span>Abstract:<br />\n<br />\n</span></strong><span style="text-align: left;">Crystal plasticity (CP) models are increasingly used in engineering applications to obtain microstructure-sensitive mechanical response of polycrystalline materials. These models require a proper consideration of the single crystal deformation mechanisms, a representative description of the microstructure, and an appropriate scheme to connect the microstates with the macroscopic response. Full-field Fast Fourier Transform (FFT)-based methods, originally proposed by Moulinec and Suquet [1] for composites and extended by us to poly-</span><span style="text-align: left;">crystals [2] are attractive due to their relative higher efficiency compared with CP-Finite Elements, and their direct use of voxelized microstructural images. In this talk, we will report recent progress on FFT-based polycrystal plasticity, with emphasis in novel implementations, including large-strain elasto-visco-plasticity, strain-gradient plasticity, creep, and dynamic deformation/inertial effects.<br />\n</span><span style="text-align: left;">We will show applications of FFT-based methods to micromechanics of nano-metallic laminates (NMLs), creep lifetime predictions of steels, and integration with 3-D characterization methods.<br />\n<br />\n</span><span style="text-align: left;">[1] Moulinec, H., Suquet, P., 1998. A numerical method for computing the overall response of nonlinear composites with complex microstructure.&nbsp;</span><span style="text-align: left;">Computer Methods in Applied Mechanics and Engineering 157, 69-94.<br />\n</span><span style="text-align: left;">[2] Lebensohn, R.A., 2001. N-site modelling of a 3D viscoplastic polycrystal using Fast Fourier Transform. Acta Materialia 49, 2723-2737.</span></p>\n<p style="margin-top: 0cm; margin-right: 0cm; margin-bottom: 0.0001pt; text-align: justify;"><span style="text-align: left;">\n<br />\n</span></p>\n<p style="text-align: justify;"><span style="color: black;"></span><span>Danish pastry, coffee and tea will e served 15 minutes before the seminar starts.<br />\n<br />\nAll interested persons are invited</span></p>

URL:http://www.dcamm.dk/da/Kalender/2021/11/Seminar_No_750
DTSTAMP:20260929T162200Z
UID:{71C4EF49-F70C-4B04-AAA3-F85B41FCED0A}-20211109T090000Z-20211109T090000Z
LOCATION: Building 414 - room 061B, Technical University of Denmark
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