The displacement field of structures generally loaded and constrained is univocally defined if material properties are known. This represents the basic pillar of an inverse solution of the elastic problem, commonly used to characterize traditional materials. This paper describes a new approach for solving an inverse engineering problem to apply on innovative materials, whose mechanical properties are unknown. It works iteratively and aims to minimize the difference between the displacement field measured experimentally on three-point-bending tests and their counterpart computed by FEM analysis, applying the same loads and boundary conditions. This hybrid procedure is based on a combination of an optical interferometric technique having nanometric sensitivity (Electronic Speckle Pattern Interferometry) with a numerical procedure which uses an optimization algorithm. The purpose is to predict accurately the mechanical properties of new materials, object of interest for aerospace, biomechanical and technological industries, deeply reducing costs and time.

New Approaches to Mechanical Characterize Innovative Materials / Pappalettere, Carmine; Barile, Claudia; Casavola, Caterina; Pappalettera, Giovanni. - (2014). (Intervento presentato al convegno 1st Workshop on the State of the Art and Challenges of Research Efforts at POLIBA tenutosi a Bari nel 3-5 Dicembre 2014).

New Approaches to Mechanical Characterize Innovative Materials

PAPPALETTERE, Carmine;BARILE, Claudia;CASAVOLA, Caterina;PAPPALETTERA, Giovanni
2014-01-01

Abstract

The displacement field of structures generally loaded and constrained is univocally defined if material properties are known. This represents the basic pillar of an inverse solution of the elastic problem, commonly used to characterize traditional materials. This paper describes a new approach for solving an inverse engineering problem to apply on innovative materials, whose mechanical properties are unknown. It works iteratively and aims to minimize the difference between the displacement field measured experimentally on three-point-bending tests and their counterpart computed by FEM analysis, applying the same loads and boundary conditions. This hybrid procedure is based on a combination of an optical interferometric technique having nanometric sensitivity (Electronic Speckle Pattern Interferometry) with a numerical procedure which uses an optimization algorithm. The purpose is to predict accurately the mechanical properties of new materials, object of interest for aerospace, biomechanical and technological industries, deeply reducing costs and time.
2014
1st Workshop on the State of the Art and Challenges of Research Efforts at POLIBA
978-88-492-2965-3
New Approaches to Mechanical Characterize Innovative Materials / Pappalettere, Carmine; Barile, Claudia; Casavola, Caterina; Pappalettera, Giovanni. - (2014). (Intervento presentato al convegno 1st Workshop on the State of the Art and Challenges of Research Efforts at POLIBA tenutosi a Bari nel 3-5 Dicembre 2014).
File in questo prodotto:
Non ci sono file associati a questo prodotto.

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11589/58760
Citazioni
  • Scopus ND
  • ???jsp.display-item.citation.isi??? ND
social impact