Modeling and analysis of the effect of substrate on the flexible piezoelectric films for kinetic energy harvesting from textiles

Author:

Chakhchaoui Nabil12ORCID,Jaouani H23,Ennamiri H2,Eddiai A4,Hajjaji A5,Meddad M6,Van Langenhove Lieva7,Boughaleb Y1

Affiliation:

1. BGIM Laboratory, Higher Normal School (ENS), Hassan II University, Morocco

2. REMTEX Laboratory, Higher School of Textile and Clothing Industries (ESITH), Morocco

3. Laboratory of Renewable Energies & Systems Dynamics, Faculty of Sciences Ain Chock, Hassan II University, Morocco

4. Laboratory of Physics of Condensed Matter (LPMC), Faculty of Sciences Ben M’Sik Hassan II University, Morocco

5. Laboratory of Engineer Science for Energy, ENSA, Chouaïb Doukkali University, Morocco

6. LAS Laboratory of Setif, Mohamed el Bachir el Ibrahimi BBA University, Algeria

7. Centre for Textile Science and Engineering, Department of Materials, Textiles and Chemical Engineering, Ghent University, Belgium

Abstract

In the last few years, a lot of research focused on increasing of smart textiles products such as woven and knitted structures, which are able to show significant change in their mechanical properties (such as shape and stiffness), in a practical way in response to the stimuli. In this paper, we investigate the potential of a flexible piezoelectric film stuck onto three woven textile matrices: cotton, polyester/cotton, and Kermel, for harvesting mechanical energy from the textile and converting it into electrical energy. At first, a brief introduction of energy harvesting using the piezoelectric material and smart textile is presented. Furthermore, a basic model showing the operation of polyvinylidene fluoride with 33 mode is established. The second part is focused on standard approach model of energy harvesting based on resistive load and freestanding piezo-polymer for the examination of the performance of 33-mode polyvinylidene fluoride energy harvester and the prediction of harvested energy quantity. A power analytical model generated by a smart structure type polyvinylidene fluoride that can be stuck onto fabrics and flexible substrates is investigated. On the other hand, the effects of various substrates and the sticking of these substrates on the piezoelectric material are reported. Additionally, the output power density of this theoretical model of woven textile matrices could reach a value that was seven times higher than freestanding piezo-polymer. Three types of the substrates have been compared as function of excitation frequency and the compressive applied force.

Publisher

SAGE Publications

Subject

Materials Chemistry,Mechanical Engineering,Mechanics of Materials,Ceramics and Composites

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