A geometrical multi-scale numerical method for coupled hygro-thermo-mechanical problems in photovoltaic laminates.

Comput Mech

Research Unit on Multi-scale Analysis of Materials (MUSAM), IMT Institute for Advanced Studies Lucca, Piazza San Francesco 19, 55100 Lucca, Italy.

Published: February 2016

A comprehensive computational framework based on the finite element method for the simulation of coupled hygro-thermo-mechanical problems in photovoltaic laminates is herein proposed. While the thermo-mechanical problem takes place in the three-dimensional space of the laminate, moisture diffusion occurs in a two-dimensional domain represented by the polymeric layers and by the vertical channel cracks in the solar cells. Therefore, a geometrical multi-scale solution strategy is pursued by solving the partial differential equations governing heat transfer and thermo-elasticity in the three-dimensional space, and the partial differential equation for moisture diffusion in the two dimensional domains. By exploiting a staggered scheme, the thermo-mechanical problem is solved first via a fully implicit solution scheme in space and time, with a specific treatment of the polymeric layers as zero-thickness interfaces whose constitutive response is governed by a novel thermo-visco-elastic cohesive zone model based on fractional calculus. Temperature and relative displacements along the domains where moisture diffusion takes place are then projected to the finite element model of diffusion, coupled with the thermo-mechanical problem by the temperature and crack opening dependent diffusion coefficient. The application of the proposed method to photovoltaic modules pinpoints two important physical aspects: (i) moisture diffusion in tests with a temperature dependent diffusivity is a much slower process than in the case of a constant diffusion coefficient; (ii) channel cracks through Silicon solar cells significantly enhance moisture diffusion and electric degradation, as confirmed by experimental tests.

Download full-text PDF

Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4947389PMC
http://dx.doi.org/10.1007/s00466-016-1271-5DOI Listing

Publication Analysis

Top Keywords

moisture diffusion
20
thermo-mechanical problem
12
geometrical multi-scale
8
coupled hygro-thermo-mechanical
8
hygro-thermo-mechanical problems
8
problems photovoltaic
8
photovoltaic laminates
8
finite element
8
takes place
8
three-dimensional space
8

Similar Publications

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!