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Naji, M. |
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Motta, Antonella |
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Aletan, Dirar |
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Mohamed, Tarek |
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Ertürk, Emre |
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Taccardi, Nicola |
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Kononenko, Denys |
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Petrov, R. H. | Madrid |
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Alshaaer, Mazen | Brussels |
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Bih, L. |
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Casati, R. |
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Muller, Hermance |
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Kočí, Jan | Prague |
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Šuljagić, Marija |
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Kalteremidou, Kalliopi-Artemi | Brussels |
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Azam, Siraj |
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Ospanova, Alyiya |
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Blanpain, Bart |
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Ali, M. A. |
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Popa, V. |
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Rančić, M. |
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Ollier, Nadège |
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Azevedo, Nuno Monteiro |
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Landes, Michael |
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Rignanese, Gian-Marco |
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Martin, Antoine
in Cooperation with on an Cooperation-Score of 37%
Topics
Publications (5/5 displayed)
- 2023Detachable 3-layers Au absorber microfabrication for low-temperature detectorscitations
- 2023Thermal structural ratcheting simulation—Evaluation of industrial-used constitutive models
- 2023Deposition of ultra-refractory sputtered layers for high temperature applications: challenges and some solutions ; Dépôt par pulvérisation de films ultraréfractaires pour des applications hautes températures: Défis et quelques solutions
- 2023Assessment of the equivalent inclusion method for the numerical homogenization of fibrous compositescitations
- 2014Analytical and numerical simulation of the behavior of 2.5D braided interlock composite tubes under crush loading.
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article
Assessment of the equivalent inclusion method for the numerical homogenization of fibrous composites
Abstract
For the homogenization of fiber composites, the equivalent inclusion method is proposed as an alternative to costly full-field methods and less accurate mean-field or effective-field approaches. We take advantage of the slenderness of the inhomogeneities to overcome the “curse of dimensionality” that was evidenced previously for this method. The resulting method is shown on a number of examples to be both accurate and computationally efficient. It is also extremely versatile, as it applies to a large variety of physical problems (beyond electric conductivity considered here).