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Dive into the research topics where Claudio Maruccio is active.

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Featured researches published by Claudio Maruccio.


Advanced Materials | 2014

Cooperativity in the Enhanced Piezoelectric Response of Polymer Nanowires

Luana Persano; Canan Dagdeviren; Claudio Maruccio; Laura De Lorenzis; Dario Pisignano

Multilayered, aligned arrays of organic nanowires show unique advantages in their piezoelectric response. Here, the cooperative, electromechanical mechanism at the base of the enhanced response of aligned arrays of piezoelectric nanostructures in mutual contact is unveiled. An enhancement of the piezoelectric voltage by two orders of magnitude compared with individual nanofibers is demonstrated in the arrays.


Computational Mechanics | 2015

Computational homogenization of fibrous piezoelectric materials

Claudio Maruccio; Laura De Lorenzis; Luana Persano; Dario Pisignano

Flexible piezoelectric devices made of polymeric materials are widely used for micro- and nano-electro-mechanical systems. In particular, numerous recent applications concern energy harvesting. Due to the importance of computational modeling to understand the influence that microscale geometry and constitutive variables exert on the macroscopic behavior, a numerical approach is developed here for multiscale and multiphysics modeling of thin piezoelectric sheets made of aligned arrays of polymeric nanofibers, manufactured by electrospinning. At the microscale, the representative volume element consists in piezoelectric polymeric nanofibers, assumed to feature a piezoelastic behavior and subjected to electromechanical contact constraints. The latter are incorporated into the virtual work equations by formulating suitable electric, mechanical and coupling potentials and the constraints are enforced by using the penalty method. From the solution of the micro-scale boundary value problem, a suitable scale transition procedure leads to identifying the performance of a macroscopic thin piezoelectric shell element.


Smart Materials and Structures | 2016

Energy harvesting from electrospun piezoelectric nanofibers for structural health monitoring of a cable-stayed bridge

Claudio Maruccio; Giuseppe Quaranta; Laura De Lorenzis; Giorgio Monti

Wireless monitoring could greatly impact the fields of structural health assessment and infrastructure asset management. A common problem to be tackled in wireless networks is the electric power supply, which is typically provided by batteries replaced periodically. A promising remedy for this issue would be to harvest ambient energy. Within this framework, the present paper proposes to harvest ambient-induced vibrations of bridge structures using a new class of piezoelectric textiles. The considered case study is an existing cable-stayed bridge located in Italy along a high-speed road that connects Rome and Naples, for which a recent monitoring campaign has allowed to record the dynamic responses of deck and cables. Vibration measurements have been first elaborated to provide a comprehensive dynamic assessment of this infrastructure. In order to enhance the electric energy that can be converted from ambient vibrations, the considered energy harvester exploits a power generator built using arrays of electrospun piezoelectric nanofibers. A finite element analysis is performed to demonstrate that such power generator is able to provide higher energy levels from recorded dynamic loading time histories than a standard piezoelectric energy harvester. Its feasibility for bridge health monitoring applications is finally discussed.


Soft Matter | 2013

Rolling particle lithography by soft polymer microparticles

Francesca Di Benedetto; Vito Fasano; Luana Persano; Claudio Maruccio; Elisa Mele; Giovanni Potente; David A. Weitz; Laura De Lorenzis; Dario Pisignano

Elastomeric polymeric microspheres are employed as a direct-writing tool for the continuous delivery of molecular materials. The mechanical properties enabling patterning are investigated and modelled. The proposed approach provides a low cost and versatile lithographic method for transferring features with real-time dynamic control.


International Journal of Structural Stability and Dynamics | 2016

Nonlinear Analysis of Masonry Buildings Under Seismic Actions with a Multifan Finite Element

Zhixiong Chen; Claudio Maruccio; Yang Xiao; Ying Hu

This paper presented an innovative method for nonlinear simulation of masonry structures under seismic loading conditions. The method is based on a macro-modeling formulation of a masonry panel. A new finite element (FE), called a “multi-fan” (MF) element, is developed on the macro scale, whereby the stress field within the panel is determined at each load step by minimizing the current complementary potential energy. Because only one element is required to model a single masonry panel in the structure, this approach enables a reduction in the total number of degrees of freedom (DOFs) of the system and the total computational effort. The ability of the proposed approach to estimate the ultimate capacity of masonry walls was analyzed both by comparing its predictions with available experimental results and through FE analyses based on a micro-modeling approach. The comparisons show satisfactory accuracy at both the global and local levels. Therefore, the new macro-element can be effectively used in safety assessments of masonry buildings.


Shock and Vibration | 2018

A Two-Step Hybrid Approach for Modeling the Nonlinear Dynamic Response of Piezoelectric Energy Harvesters

Claudio Maruccio; Giuseppe Quaranta; Pasquale Montegiglio; Francesco Trentadue; Giuseppe Acciani

An effective hybrid computational framework is described here in order to assess the nonlinear dynamic response of piezoelectric energy harvesting devices. The proposed strategy basically consists of two steps. First, fully coupled multiphysics finite element (FE) analyses are performed to evaluate the nonlinear static response of the device. An enhanced reduced-order model is then derived, where the global dynamic response is formulated in the state-space using lumped coefficients enriched with the information derived from the FE simulations. The electromechanical response of piezoelectric beams under forced vibrations is studied by means of the proposed approach, which is also validated by comparing numerical predictions with some experimental results. Such numerical and experimental investigations have been carried out with the main aim of studying the influence of material and geometrical parameters on the global nonlinear response. The advantage of the presented approach is that the overall computational and experimental efforts are significantly reduced while preserving a satisfactory accuracy in the assessment of the global behavior.


Fracture and Structural Integrity | 2014

Numerical homogenization of piezoelectric textiles with electrospun fibers for energy harvesting

Claudio Maruccio; L. De Lorenzis

Piezoelectric effects are exploited in an increasing number of micro- and nano-electro-mechanical systems. In particular, energy harvesting devices convert ambient energy (i.e. mechanical pressure) into electrical energy and their study is nowadays a very important and challenging field of research. In this paper, the attention is focused on piezoelectric textiles. Due to the importance of computational modeling to understand the influence that micro-scale geometry and constitutive variables have on the macroscopic behavior, a homogenization strategy is developed. The macroscopic structure behaviour is obtained defining a reference volume element (RVE) at the micro-scale. The geometry of the RVE is based on the microstructural properties of the material under consideration and consists in piezoelectric polymeric nano-fibers subjected to electromechanical contact constraints. This paper outlines theory and numerical implementation issues for the homogenization procedure. Moreover, within this approach the average response resulting from the analysis of different fiber configurations at the microscale is determined providing a multiphysics constitutive model for the macro-scale.


Archive | 2010

IV European Conference on Computational Mechanics

Claudio Maruccio; Daniel V. Oliveira; Giorgio Monti


Construction and Building Materials | 2014

Numerical modelling and parametric analysis of bond strength of masonry members retrofitted with FRP

Claudio Maruccio; Ismael Basílio; Daniel V. Oliveira; Paulo B. Lourenço; Giorgio Monti


Mechanical Systems and Signal Processing | 2018

Analysis of piezoelectric energy harvester under modulated and filtered white Gaussian noise

Giuseppe Quaranta; Francesco Trentadue; Claudio Maruccio; Giuseppe Carlo Marano

Collaboration


Dive into the Claudio Maruccio's collaboration.

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Luana Persano

Istituto Italiano di Tecnologia

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Laura De Lorenzis

Braunschweig University of Technology

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Giorgio Monti

Sapienza University of Rome

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L. De Lorenzis

Braunschweig University of Technology

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Giuseppe Quaranta

Sapienza University of Rome

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Canan Dagdeviren

Massachusetts Institute of Technology

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Giuseppe Quaranta

Sapienza University of Rome

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Giuseppe Acciani

Polytechnic University of Bari

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