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Bistable polar-orthotropic shallow shells
1Department of Engineering, University of Cambridge, Trumpington Street, Cambridge CB2 1PZ, UK.
This study reveals that the orthotropic ratio and support conditions critically influence bistability in polar-orthotropic shells for morphing structures. Hoop stiffness is stabilizing only if it prevents radial expansion, and central holes can induce bistability in specific shell configurations.
Area of Science:
- Mechanics of Materials
- Structural Engineering
- Computational Mechanics
Background:
- Bistability in shells is crucial for developing advanced morphing structures.
- Stress singularities arise in polar-orthotropic shells when circumferential stiffness is less than radial stiffness (β < 1).
- Understanding factors influencing bistability is key to designing stable and adaptable structures.
Purpose of the Study:
- To investigate stabilizing and destabilizing factors affecting bistability in polar-orthotropic shells.
- To enhance the design of morphing structures through a better understanding of shell bistability.
- To analyze the impact of orthotropic ratio, in-plane support conditions, and geometric modifications on bistability.
Main Methods:
- Employed a higher-order, geometrically nonlinear analytical model using a Ritz approach.
- Carefully selected trial functions to handle stress singularities inherent in the material law.
- Analyzed the interaction between orthotropic ratio (β) and in-plane support conditions.
Main Results:
- Bistability is highly dependent on the orthotropic ratio (β) and in-plane support conditions.
- Hoop stiffness is stabilizing only by preventing radial expansion; its effect is redundant with in-plane supports.
- Fixed-pinned shells are more prone to stable inversions than roller-supported shells, especially with high radial stiffness.
- Cutting a central hole promotes bistability in roller-supported shells but has minimal effect on fixed-pinned ones.
Conclusions:
- The study provides closed-form approximations for the bistable threshold using single-curvature-term approaches.
- A strong coupling exists between the orthotropic ratio and support conditions for stiffer radial stiffness.
- Central holes offer a viable strategy to mitigate stress singularities and induce bistability in specific shell designs.
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