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Simulating loading–unloading hysteretic behaviors of nematic-genesis polydomain nematic elastomers.
- Source :
-
International Journal of Solids & Structures . Nov2024, Vol. 304, pN.PAG-N.PAG. 1p. - Publication Year :
- 2024
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Abstract
- • Nematic-genesis polydomain nematic elastomers (N-PNEs) can be energy absorber. • Voronoi diagram-based finite element model is established for N-PNEs. • Cyclic tensile and compressive behaviors of N-PNEs is investigated numerically. • Smooth polydomain-monodomain transitions and memory effect are captured. • N-PNEs show superior energy absorption and dissipation than monodomain ones. Nematic elastomers (NEs) are lightly cross-linked elastomers with nematic mesogens integrated in their polymer networks. Combination of large deformation capability with nematic-isotropic phase transition enables NEs to be the most promising soft materials for impact attenuation, actuation and soft robotics. In this paper, we focus on nematic-genesis polydomain NEs (N-PNEs) where mesogens are cross-linked at nematic states. N-PNEs are capable of absorbing and dissipating energy and easy to synthesize. We present a Voronoi diagram-based finite element model for specimen-scale N-PNEs, and investigate the cyclic tensile and compressive behaviors of N-PNEs at different strain rates. Our simulations reveal a smooth polydomain-monodomain transition during loading, accompanied by a full recovery of polydomain texture after the load is removed, indicating a memory effect of initial disordered mesogen alignment. The predicted behaviors align well with experimental observations, which validates our model. Furthermore, we assess the energy absorption and dissipation capabilities of N-PNEs compared to monodomain NEs, identifying conditions where N-PNEs exhibit superior performance. This study not only enhances our understanding of polydomain-monodomain transitions in N-PNEs, but also lays the groundwork for the development of N-PNE-based energy absorbers. [ABSTRACT FROM AUTHOR]
Details
- Language :
- English
- ISSN :
- 00207683
- Volume :
- 304
- Database :
- Academic Search Index
- Journal :
- International Journal of Solids & Structures
- Publication Type :
- Academic Journal
- Accession number :
- 179558899
- Full Text :
- https://doi.org/10.1016/j.ijsolstr.2024.113039