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Deformation occurs in axial and transverse directions when an axial load is applied to a slender bar. This deformation impacts the cubic element within the bar, transforming it into either a rectangular parallelepiped or a rhombus, contingent on its orientation. This transformation process induces shearing strain. Axial loading elicits both shearing and normal strains. Applying an axial load instigates equal normal and shearing stresses on elements oriented at a 45° angle to the load axis.
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Updated: Jul 29, 2025

Characterizing Dissipative Elastic Metamaterials Produced by Additive Manufacturing
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Modelling of Electro-Viscoelastic Materials through Rate Equations.

Claudio Giorgi1, Angelo Morro2

  • 1Department of Civil, Environmental, Architectural Engineering and Mathematics, University of Brescia, Via Valotti 9, 25133 Brescia, Italy.

Materials (Basel, Switzerland)
|May 27, 2023
PubMed
Summary

This study develops general thermodynamic models for large deformation dielectric solids, incorporating viscoelasticity, electric, and thermal conduction. These models accurately predict material behavior using few parameters, benefiting ferroelectric applications.

Keywords:
constitutive rate equationselectro-viscoelastic materialselectroelasticity with dielectric memoryferroelectric hysteresisthermodynamic consistency

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Area of Science:

  • Continuum Mechanics
  • Thermodynamics of Materials
  • Dielectric Solids

Background:

  • Modeling dielectric solids under large deformations requires accounting for complex properties like viscoelasticity and conduction.
  • Existing models may lack generality or accuracy in capturing coupled electromechanical and thermal behaviors.

Purpose of the Study:

  • To establish general thermodynamic models for dielectric solids undergoing large deformations.
  • To incorporate viscoelasticity, electric, and thermal conduction within a unified framework.
  • To provide accurate constitutive models for materials like soft ferroelectrics.

Main Methods:

  • Utilizing a thermodynamic approach to derive constitutive equations.
  • Selecting appropriate fields for polarization and electric fields based on physical principles (angular momentum balance, Euclidean invariance).
  • Investigating thermodynamic restrictions using a comprehensive set of variables.

Main Results:

  • Developed general models for dielectric solids with viscoelastic properties, electric and thermal conduction.
  • Identified suitable fields for polarization and electric fields.
  • Demonstrated that few constitutive parameters can accurately fit material behavior, particularly for soft ferroelectrics (e.g., BTS ceramics).
  • Incorporated dependence on electric field gradient and entropy production as a constitutive property.

Conclusions:

  • The proposed thermodynamic framework provides accurate and general models for large deformation dielectric solids.
  • The models offer improved accuracy and generality through explicit representation formulae derived from thermodynamic inequalities.
  • This approach is advantageous for material characterization and simulation, especially for advanced dielectric materials.