Peridynamic Modeling of Nearly-Incompressible Soft Materials for Aerospace Systems
Francesco SCABBIA, Vito DIANA, Francesca FANTONI, Mirco ZACCARIOTTO, Ugo GALVANETTO
Abstract. Soft materials are increasingly integrated into modern aerospace systems due to their unique ability to deform, adapt, and absorb energy under extreme conditions. Applications such as morphing wing skins, soft robotic components for extraterrestrial exploration, and impact-absorbing systems in UAVs and space capsules, to cite a few, rely on soft polymers and elastomers subjected to large deformations. A major concern in these applications is the initiation and evolution of cracks, which can arise from cyclic loading, environmental exposure, or sudden impacts, possibly leading to failures like tearing or puncture. Predicting such damage with advanced numerical tools is essential for ensuring structural integrity, reliability, and mission success. Peridynamics, a nonlocal continuum mechanics theory, is particularly well-suited to modeling discontinuities due to fracture phenomena as the integral formulation of the internal forces allows to easily remove interactions between points across the crack surface. Therefore, cracks are not required to propagate along predefined paths, but can evolve along the most energetically favorable paths. Furthermore, peridynamic correspondence models allow to embed into the peridynamic framework hyperelastic constitutive laws used in classical continuum mechanics to describe the behavior of soft materials. Correspondence models require a stabilization technique to avoid zero-energy modes, which can undermine numerical accuracy. However, when modeling nearly-incompressible soft materials, stabilized correspondence models exhibit a numerical issue which leads to unrealistically stiff responses and an incorrect reproduction of the strain energy density for non-homogeneous deformations. Therefore, we propose a robust yet simple method to mitigate this issue and validate it through numerical examples of benchmark problems involving hyperelastic materials.
Keywords
Correspondence Model, Fracture Mechanics, Hyperelastic Constitutive Model, Volumetric Locking, Large Deformations
Published online 7/20/2026, 5 pages
Copyright © 2026 by the author(s)
Published under license by Materials Research Forum LLC., Millersville PA, USA
Citation: Francesco SCABBIA, Vito DIANA, Francesca FANTONI, Mirco ZACCARIOTTO, Ugo GALVANETTO, Peridynamic Modeling of Nearly-Incompressible Soft Materials for Aerospace Systems, Materials Research Proceedings, Vol. 69, pp 1422-1426, 2026
DOI: https://doi.org/10.21741/9781644904251-249
The article was published as article 249 of the book CEAS – AIDAA Conference 2025
Content from this work may be used under the terms of the Creative Commons Attribution 3.0 license. Any further distribution of this work must maintain attribution to the author(s) and the title of the work, journal citation and DOI.
References
[1] C. Thill, J. Etches, I. Bond, K. Potter, P. Weaver, Morphing skins, The Aeronautical Journal, 112 (2008) 117-139. https://doi.org/10.1017/S0001924000002062
[2] S. Barbarino, E.S. Flores, R.M. Ajaj, I. Dayyani, M.I. Friswell, A review on shape memory alloys with applications to morphing aircraft, Smart Materials and Structures, 23 (2014) 063001. https://doi.org/10.1088/0964-1726/23/6/063001
[3] D. Rus, M.T. Tolley, Design, fabrication and control of soft robots, Nature, 521 (2015) 467-475. https://doi.org/10.1038/nature14543
[4] D. Trivedi, C.D. Rahn, W.M. Kier, I.D. Walker, Soft robotics: Biological inspiration, state of the art, and future research, Applied Bionics and Biomechanics, 5 (2008) 99-117. https://doi.org/10.1080/11762320802557865
[5] H. Yin, X. Wang, L. Wu, W. Zhang, T. Zhao, G. Wen, J. Liu, Review on soft landing buffer systems for planetary exploration, Acta Astronautica, 228 (2024) 561-594. https://doi.org/10.1016/j.actaastro.2024.12.028
[6] S.A. Silling, Reformulation of elasticity theory for discontinuities and long-range forces, Journal of the Mechanics and Physics of Solids, 48 (2000) 175-209. https://doi.org/10.1016/S0022-5096(99)00029-0
[7] S.A. Silling, M. Epton, O. Weckner, J. Xu, E. Askari, Peridynamic states and constitutive modeling, Journal of Elasticity 88 (2007) 151-184. https://doi.org/10.1007/s10659-007-9125-1
[8] H. Chen, Bond-associated deformation gradients for peridynamic correspondence model, Mechanics Research Communications 90 (2018) 34-41. https://doi.org/10.1016/j.mechrescom.2018.04.004
[9] F. Scabbia, V. Diana, F. Fantoni, M. Zaccariotto, U. Galvanetto, Peridynamic correspondence model for nearly-incompressible finite elasticity, Computer Methods in Applied Mechanics and Engineering, 447 (2025) 118350. https://doi.org/10.1016/j.cma.2025.118350
[10] R.W. Ogden, Large deformation isotropic elasticity–on the correlation of theory and experiment for incompressible rubberlike solids, Proceedings of the Royal Society of London A, Mathematical and Physical Sciences, 326 (1972) 565-584.
[11] A.R. Trivedi, C.R. Siviour, A simple rate-temperature dependent hyperelastic model applied to neoprene rubber. Journal of Dynamic Behavior of Materials 6 (2020) 336-347. https://doi.org/10.1007/s40870-020-00252-w

