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DTSTART:20150617T140000
DTEND:20150617T150000
SUMMARY:DCAMM Seminar - Residual Stresses in Polymer Composites: Numerical Modelling of Process and Product Performance
DESCRIPTION:<p style="text-align: left;">A DCAMM seminar&nbsp;will be presented by </p>\n<p style="text-align: center;"><strong>Ismet Baran, Assistant Professor, Ph.D.<br />\nUniversity of Twente<br />\nEnschede, The Netherlands<br />\n</strong><strong>\n<br />\n</strong></p>\n<p style="text-align: justify;"><strong>Abstract</strong>: <br />\n<br />\n<span> </span><span>It is generally accepted that residual stresses in fiber reinforced polymer composites arise primarily due to the anisotropic chemical &nbsp;&nbsp;shrinkage and thermal expansion of individual plies in macro level. The different thermal expansion of individual fiber and matrix </span><span>material is also one of the mechanisms generating residual stresses in micro level. The formation of residual stresses can have signi</span><span>ficant effects on the mechanical performance of composite structures by causing warpage, initiating damage such as interface debon</span><span>ding and matrix premature cracking. They also affect the internal stress level which plays an important role on the failure mechanism </span><span>of composite structures during their service life such as crack initiation and growth.<br />\n</span><span>\n<br />\nThe present seminar first focuses on the modelling of residual stress in a composite manufacturing process namely the pultrusion </span><span>process. The state-of-the-art thermo-chemical and thermo-mechanical modelling strategies specifically developed for a thermosetting pultrusion are explained. The proposed models are utilized to predict the process induced stresses for various glass reinforced pultruded products such as square beam, circular rod and I-beam. Different residual stress levels and characteristics are obtained from the process simulations which are qualitatively compared with the real pultruded products.<br />\n&nbsp;<br />\n</span><span>The seminar then concentrates on the effects of thermal residual stresses on the mechanical behavior of a recently developed butt jointed AS4/PEKK thermoplastic T-stiffener under bending conditions. The thermal residual stresses are first estimated by applying a tempe</span><span>rature gradient from the crystallization temperature to room temperature. Subsequently, the crack initiation and propagation in the butt </span><span>joint as well as delamination at the skin-joint interface are simulated using a quasi-static numerical model in which the calculated thermal residual stresses are also taken in to account in model.</span></p>\n<p style="text-align: justify;"><span> Danish pastry, coffee and tea will be served 15 minutes before the seminar starts.<br />\n&nbsp;&nbsp;</span><br />\nAll interested persons are invited</p>
X-ALT-DESC;FMTTYPE=text/html:<p style="text-align: left;">A DCAMM seminar&nbsp;will be presented by </p>\n<p style="text-align: center;"><strong>Ismet Baran, Assistant Professor, Ph.D.<br />\nUniversity of Twente<br />\nEnschede, The Netherlands<br />\n</strong><strong>\n<br />\n</strong></p>\n<p style="text-align: justify;"><strong>Abstract</strong>: <br />\n<br />\n<span> </span><span>It is generally accepted that residual stresses in fiber reinforced polymer composites arise primarily due to the anisotropic chemical &nbsp;&nbsp;shrinkage and thermal expansion of individual plies in macro level. The different thermal expansion of individual fiber and matrix </span><span>material is also one of the mechanisms generating residual stresses in micro level. The formation of residual stresses can have signi</span><span>ficant effects on the mechanical performance of composite structures by causing warpage, initiating damage such as interface debon</span><span>ding and matrix premature cracking. They also affect the internal stress level which plays an important role on the failure mechanism </span><span>of composite structures during their service life such as crack initiation and growth.<br />\n</span><span>\n<br />\nThe present seminar first focuses on the modelling of residual stress in a composite manufacturing process namely the pultrusion </span><span>process. The state-of-the-art thermo-chemical and thermo-mechanical modelling strategies specifically developed for a thermosetting pultrusion are explained. The proposed models are utilized to predict the process induced stresses for various glass reinforced pultruded products such as square beam, circular rod and I-beam. Different residual stress levels and characteristics are obtained from the process simulations which are qualitatively compared with the real pultruded products.<br />\n&nbsp;<br />\n</span><span>The seminar then concentrates on the effects of thermal residual stresses on the mechanical behavior of a recently developed butt jointed AS4/PEKK thermoplastic T-stiffener under bending conditions. The thermal residual stresses are first estimated by applying a tempe</span><span>rature gradient from the crystallization temperature to room temperature. Subsequently, the crack initiation and propagation in the butt </span><span>joint as well as delamination at the skin-joint interface are simulated using a quasi-static numerical model in which the calculated thermal residual stresses are also taken in to account in model.</span></p>\n<p style="text-align: justify;"><span> Danish pastry, coffee and tea will be served 15 minutes before the seminar starts.<br />\n&nbsp;&nbsp;</span><br />\nAll interested persons are invited</p>

URL:http://www.dcamm.dk/da/Kalender/2015/06/Seminar_No_687
DTSTAMP:20260920T040000Z
UID:{1691C164-6C5A-4E3D-83F0-9ED3957205D1}-20150617T140000-20150617T140000
LOCATION: Room 074, Building 421, Technical University of Denmark
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