Influence of Lamination Conditions of EVA Encapsulation on Photovoltaic Module Durability

Author:

Wu Dan1,Wessel Patrick23,Zhu Jiang14,Montiel-Chicharro Daniel1,Betts Thomas R.1,Mordvinkin Anton2ORCID,Gottschalg Ralph123ORCID

Affiliation:

1. Centre for Renewable Energy Systems Technology (CREST), School of Mechanical, Electrical and Manufacturing Engineering, Loughborough University, Loughborough LE11 3TU, UK

2. Fraunhofer Center for Silicon-Photovoltaic (CSP), Otto-Eissfeldt-Straße 12, 06120 Halle, Germany

3. Fachbereich Elektrotechnik, Maschinenbau und Wirtschaftsingenieurwesen (EMW), Hochschule Anhalt Bernburger Str. 57, 06366 Köthen, Germany

4. Turbo Power Systems Ltd., 1 Queens Park, Queensway North, Gateshead, Tyne and Wear NE11 0QD, UK

Abstract

Encapsulation is a well-known impact factor on the durability of Photovoltaics (PV) modules. Currently there is a lack of understanding on the relationship between lamination process and module durability. In this paper, the effects of different lamination parameters on the encapsulant stability due to stress testing have been investigated from both on-site production quality and long-term stability viewpoints. Rather than focusing on single stability factors, this paper evaluates lamination stability using a number of indicators including EVA (ethylene-vinyl acetate copolymer) curing level, voids generation, chemical stability, optical stability, and adhesion strength. The influences of EVA curing level on the stability of other properties are also discussed. It is shown that laminates stability increases with increasing curing level to an upper limit, beyond which leading to the formation of voids, reduced transmittance stability, discoloration, and unstable interfaces. A minimum gel content is identified but an upper limit should not be surpassed. The best range of gel content for the materials tested here is 84–90%. Samples with gel content below 70% show low chemical and optical stability, weak adhesion strength, and EVA flowing. Laminates with gel content over 92% are more likely to become yellow and are less stable in adhesion.

Funder

Research Councils UK (RCUK) Energy Programme

Department of Science and Technology (DST) in India

Publisher

MDPI AG

Subject

General Materials Science

Reference59 articles.

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5. Gottschalg, R., Zhu, J., Wu, D., Montiel-Chicharro, D., and Betts, T.R. (2014, January 23–27). Effects of lamination temperature on durability of adhesion and performance for EVA encapsulated PV modules. Proceedings of the 6th World Conference on Photovoltaic Energy Conversion, Kyoto, Japan.

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