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Indentation of an elastic disk on a circular supporting ring
Tristan Suzanne1, Julien Deschamps1, Marc Georgelin1
1Aix Marseille University, CNRS, Centrale Marseille, IRPHE, Marseille, France.
Thin elastic disks relieve stress by forming wrinkles or localized d-cones. Researchers studied indentation thresholds for these buckling behaviors, finding they depend on the disk
Area of Science:
- Solid Mechanics
- Materials Science
- Applied Physics
Background:
- Thin elastic systems under compression can deform out-of-plane to release strain energy.
- Understanding buckling and wrinkling phenomena is crucial for designing flexible materials and structures.
- Previous studies have explored various buckling modes, but the transition between different deformation patterns requires further investigation.
Purpose of the Study:
- To experimentally and theoretically investigate the indentation of a thin elastic disk supported by a circular ring.
- To identify and characterize the different routes through which compressive stresses are relieved.
- To determine the indentation threshold for the onset of wrinkling versus d-cone formation as a function of system geometry.
Main Methods:
- Experimental indentation tests on elastic disks supported by a ring.
- Theoretical modeling to analyze stress relief mechanisms and deformation patterns.
- Characterization of buckling modes (wrinkles vs. d-cone) and their dependence on the aspect ratio.
Main Results:
- Compressive stress relief occurs via two distinct pathways: widespread buckling (wrinkles) or localized deformation (d-cone).
- The system's aspect ratio significantly influences the preferred stress relief mechanism.
- A critical indentation threshold was identified, distinguishing between the formation of wrinkles and d-cones.
Conclusions:
- The study elucidates the dual nature of stress relief in thin elastic disks under indentation.
- The findings provide a quantitative understanding of the transition between different buckling modes.
- This research contributes to the fundamental knowledge of thin film mechanics and elastic instability.
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