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A space-time upscaling technique for modeling high-cycle fatigue-damage of short-fiber reinforced composites

Magino, Nicola ; Köbler, Jonathan ; Andrä, Heiko ; Welschinger, Fabian ; Müller, Ralf ; Schneider, Matti (2022)
A space-time upscaling technique for modeling high-cycle fatigue-damage of short-fiber reinforced composites.
In: Composites Science and Technology, 222
doi: 10.1016/j.compscitech.2022.109340
Artikel, Bibliographie

Kurzbeschreibung (Abstract)

Characterizing short-fiber reinforced polymers under high-cycle fatigue loading is a tedious experimental task. To reduce the necessary experiments to a minimum, we introduce a computational strategy involving a mean-stress dependent fatigue-damage model for the stiffness degradation in short-fiber reinforced polymers. The key challenge in these materials is their inherent anisotropy which makes the necessary mechanical characterization process rather time-intensive, in particular for long-time experiments required for fatigue tests. Computational multiscale approaches may reduce the necessary mechanical tests to a bare minimum, offering significant savings in expense. We propose a mean-stress sensitive model to simulate the stiffness degradation in short-fiber reinforced composites subjected to fatigue loading. We start with a model formulated in time space and provide a multiple-set scale-bridging approach to arrive at a computationally efficient effective model. For a start, we describe a high-accuracy cycle-jump technique which permits us to simulate a large number of cycles, required for high-cycle fatigue. In a second step, we apply a model-order reduction in space to arrive at an effective model on component scale. Finally, we rely upon a fiber-orientation interpolation technique to produce an effective material model which covers all relevant fiber-orientation states throughout the component. Our approach utilizes a recently introduced compliance-based damage model for describing the stiffness degradation of the matrix material. We demonstrate the capability of the computational multiscale model to reproduce the stiffness degradation in fatigue experiments for different orientations, stress amplitudes, stress ratios between R = −1 and R = 0 and geometries with different notches.

Typ des Eintrags: Artikel
Erschienen: 2022
Autor(en): Magino, Nicola ; Köbler, Jonathan ; Andrä, Heiko ; Welschinger, Fabian ; Müller, Ralf ; Schneider, Matti
Art des Eintrags: Bibliographie
Titel: A space-time upscaling technique for modeling high-cycle fatigue-damage of short-fiber reinforced composites
Sprache: Englisch
Publikationsjahr: Mai 2022
Titel der Zeitschrift, Zeitung oder Schriftenreihe: Composites Science and Technology
Jahrgang/Volume einer Zeitschrift: 222
DOI: 10.1016/j.compscitech.2022.109340
URL / URN: https://www.sciencedirect.com/science/article/pii/S026635382...
Kurzbeschreibung (Abstract):

Characterizing short-fiber reinforced polymers under high-cycle fatigue loading is a tedious experimental task. To reduce the necessary experiments to a minimum, we introduce a computational strategy involving a mean-stress dependent fatigue-damage model for the stiffness degradation in short-fiber reinforced polymers. The key challenge in these materials is their inherent anisotropy which makes the necessary mechanical characterization process rather time-intensive, in particular for long-time experiments required for fatigue tests. Computational multiscale approaches may reduce the necessary mechanical tests to a bare minimum, offering significant savings in expense. We propose a mean-stress sensitive model to simulate the stiffness degradation in short-fiber reinforced composites subjected to fatigue loading. We start with a model formulated in time space and provide a multiple-set scale-bridging approach to arrive at a computationally efficient effective model. For a start, we describe a high-accuracy cycle-jump technique which permits us to simulate a large number of cycles, required for high-cycle fatigue. In a second step, we apply a model-order reduction in space to arrive at an effective model on component scale. Finally, we rely upon a fiber-orientation interpolation technique to produce an effective material model which covers all relevant fiber-orientation states throughout the component. Our approach utilizes a recently introduced compliance-based damage model for describing the stiffness degradation of the matrix material. We demonstrate the capability of the computational multiscale model to reproduce the stiffness degradation in fatigue experiments for different orientations, stress amplitudes, stress ratios between R = −1 and R = 0 and geometries with different notches.

Freie Schlagworte: Cycle jump, High-cycle fatigue damage, Mean-stress dependence, Short-fiber reinforced materials, Stiffness degradation
Zusätzliche Informationen:

Artikel-ID: 109340

Fachbereich(e)/-gebiet(e): 13 Fachbereich Bau- und Umweltingenieurwissenschaften
13 Fachbereich Bau- und Umweltingenieurwissenschaften > Fachgebiete der Mechanik
13 Fachbereich Bau- und Umweltingenieurwissenschaften > Fachgebiete der Mechanik > Fachgebiet Kontinuumsmechanik
Hinterlegungsdatum: 13 Jun 2022 06:42
Letzte Änderung: 13 Jun 2022 06:42
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