Mechanical characterization and numerical modelling of rubber shockpads in 3G artificial turf
(Mechanische Charakterisierung und numerische Modellierung von Gummistoßdämpfern in 3G-Kunstrasen)
Third generation (3G) artificial turf systems use in sporting applications is increasingly prolific. These multi-component systems are comprised of a range of polymeric and elastomeric materials that exhibit non-linear and strain rate dependent behaviours under the complex loads applied from players and equipment. To further study and better understand the behaviours of these systems, the development of a numerical model to accurately predict individual layers` behaviour as well as the overall system response under different loading conditions is necessary. The purpose of this study was to characterise and model the mechanical behaviour of a rubber shockpad found in 3G artificial surfaces for vertical shock absorption using finite element analysis. A series of uniaxial compression tests were performed to characterise the mechanical behaviour of the shockpad. Compression loading was performed at 0.9 Hz to match human walking speeds. A Microfoam material model was selected from the PolyUMod library and optimised using MCalibration software before being imported into ABAQUS for analysis. A finite element model was created for the shockpad using ABAQUS and a compressive load applied to match that of the experimental data. Friction coefficients were altered to view the effect on the loading response. The accuracy of the model was compared using a series of comparative measures including the energy loss and root mean square error.
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| Schlagworte: | |
|---|---|
| Notationen: | Sportstätten und Sportgeräte |
| Tagging: | Kunstrasen |
| Veröffentlicht in: | Proceedings |
| Sprache: | Englisch |
| Veröffentlicht: |
2018
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| Online-Zugang: | https://doi.org/10.3390/proceedings2060283 |
| Jahrgang: | 2 |
| Heft: | 6 |
| Seiten: | 283 |
| Dokumentenarten: | Artikel |
| Level: | hoch |