In this work, the mechanical characterization of hyperelastic materials is critically reframed by presenting the full-field coverage characterization of the constitutive response of a material. We shift the focus from the experimental tests to the kinematic paths they trace over the energy domain, and from the measured stresses to the corresponding combinations of derivatives of the strain energy function. The key features of the full-field coverage characterization include the use of a single unequal biaxial experiment, the ability to reconstruct the effective response function of the material using simple equilibrium relations, and the coverage of the entire domain of the strain energy function. Conducting multiple experimental tests is costly. The standard tests, such as simple tension/compression, simple shear, and equi-biaxial tests, are not suited for characterizing the strain energy, as they only explore a single and limited kinematic path within the energy domain. For incompressible materials, the strain energy and its derivatives form surfaces on the stretches or strain invariants domain, which should be explicitly visualized using experiments. This two-dimensional nature is often overlooked and it is fundamentally reconsidered here. The analogy of a mountain relief surveyed by a terrestrial drone is proposed to highlight the often-overlooked two-dimensional nature of incompressible materials behavior. In silico simulations, based on a known energy function and constitutive parameters, are used to generate an "experimental" dataset to evaluate the proposed procedure. The results of the full-field coverage characterization introduce a novel paradigm that more accurately reproduces the behavior of soft materials than the simultaneous fitting of standard tests.

The full-field coverage characterization over the energy domain of hyperelastic isotropic materials / Falope, F. O.. - In: MECHANICS OF MATERIALS. - ISSN 0167-6636. - 217:(2026), pp. 1-11. [10.1016/j.mechmat.2026.105656]

The full-field coverage characterization over the energy domain of hyperelastic isotropic materials

Falope F. O.
2026

Abstract

In this work, the mechanical characterization of hyperelastic materials is critically reframed by presenting the full-field coverage characterization of the constitutive response of a material. We shift the focus from the experimental tests to the kinematic paths they trace over the energy domain, and from the measured stresses to the corresponding combinations of derivatives of the strain energy function. The key features of the full-field coverage characterization include the use of a single unequal biaxial experiment, the ability to reconstruct the effective response function of the material using simple equilibrium relations, and the coverage of the entire domain of the strain energy function. Conducting multiple experimental tests is costly. The standard tests, such as simple tension/compression, simple shear, and equi-biaxial tests, are not suited for characterizing the strain energy, as they only explore a single and limited kinematic path within the energy domain. For incompressible materials, the strain energy and its derivatives form surfaces on the stretches or strain invariants domain, which should be explicitly visualized using experiments. This two-dimensional nature is often overlooked and it is fundamentally reconsidered here. The analogy of a mountain relief surveyed by a terrestrial drone is proposed to highlight the often-overlooked two-dimensional nature of incompressible materials behavior. In silico simulations, based on a known energy function and constitutive parameters, are used to generate an "experimental" dataset to evaluate the proposed procedure. The results of the full-field coverage characterization introduce a novel paradigm that more accurately reproduces the behavior of soft materials than the simultaneous fitting of standard tests.
2026
6-mar-2026
Inglese
217
1
11
Hyperelasticity; Isotropic materials; Two-dimensional characterization; Strain energy; Design biaxial tests; Strain invariants; Kinematic paths
open
info:eu-repo/semantics/article
Contributo su RIVISTA::Articolo su rivista
262
The full-field coverage characterization over the energy domain of hyperelastic isotropic materials / Falope, F. O.. - In: MECHANICS OF MATERIALS. - ISSN 0167-6636. - 217:(2026), pp. 1-11. [10.1016/j.mechmat.2026.105656]
Falope, F. O.
1
   Large and offshore deformations of everyday life: from seismic isolators to person's health
   LODELSIPH
   Ministero dell'Università e della Ricerca
   FIS-2023-01661
File in questo prodotto:
File Dimensione Formato  
1-s2.0-S0167663626000608-main.pdf

Open access

Tipologia: VOR - Versione pubblicata dall'editore
Licenza: [IR] creative-commons
Dimensione 2.72 MB
Formato Adobe PDF
2.72 MB Adobe PDF Visualizza/Apri
Pubblicazioni consigliate

Licenza Creative Commons
I metadati presenti in IRIS UNIMORE sono rilasciati con licenza Creative Commons CC0 1.0 Universal, mentre i file delle pubblicazioni sono rilasciati con licenza Attribuzione 4.0 Internazionale (CC BY 4.0), salvo diversa indicazione.
In caso di violazione di copyright, contattare Supporto Iris

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11380/1400369
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus 0
  • ???jsp.display-item.citation.isi??? 0
social impact