Lightning strike protection is one of the important issues in the modern maintenance problems of aircraft. This is due to a fact that the most of exterior elements of modern aircraft is manufactured from polymeric composites which are characterized by isolating electrical properties, and thus cannot carry the giant electrical charge when the lightning strikes. This causes serious damage of an aircraft structure and necessity of repairs and tests before returning a vehicle to operation. In order to overcome this problem, usually metallic meshes are immersed in the polymeric elements. This approach is quite effective, but increases a mass of an aircraft and significantly complicates the manufacturing process. The approach proposed by the authors is based on a mixture of conducting and dielectric polymers. Numerous modeling studies which are based on percolation clustering using kinetic Monte Carlo methods, finite element modeling of electrical and mechanical properties, and preliminary experimental studies, allow achieving an optimal content of conducting particles in a dielectric matrix in order to achieve possibly the best electrical conductivity and mechanical properties, simultaneously. After manufacturing the samples with optimal content of a conducting polymer, mechanical and electrical characterization as well as high-voltage testing was performed. The application of such a material simplifies manufacturing process and ensures unique properties of aircraft structures, which allows for minimizing damage after lightning strike, as well as provide electrical bounding and grounding, interference shielding, etc. The proposed solution can minimize costs of repair, testing and certification of aircraft structures damaged by lightning strikes.
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24 February 2017
PROCEEDINGS OF THE 6TH INTERNATIONAL ADVANCES IN APPLIED PHYSICS AND MATERIALS SCIENCE CONGRESS & EXHIBITION: (APMAS 2016)
1–3 June 2016
İstanbul, Turkey
Research Article|
February 24 2017
Synthesis and testing of a conducting polymeric composite material for lightning strike protection applications Free
A. Katunin;
A. Katunin
*
1Institute of Fundamentals of Machinery Design, Faculty of Mechanical Engineering,
Silesian University of Technology
, Konarskiego 18A, 44-100 Gliwice, Poland
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K. Krukiewicz;
K. Krukiewicz
2Department of Physical Chemistry and Technology of Polymers, Faculty of Chemistry,
Silesian University of Technology
, M. Strzody 9, 44-100 Gliwice, Poland
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R. Turczyn;
R. Turczyn
2Department of Physical Chemistry and Technology of Polymers, Faculty of Chemistry,
Silesian University of Technology
, M. Strzody 9, 44-100 Gliwice, Poland
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P. Sul;
P. Sul
3Institute of Theory of Electrical Engineering, Measurement and Information Systems, Faculty of Electrical Engineering,
Warsaw University of Technology
, Koszykowa 75, 00-662 Warsaw, Poland
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A. Łasica;
A. Łasica
3Institute of Theory of Electrical Engineering, Measurement and Information Systems, Faculty of Electrical Engineering,
Warsaw University of Technology
, Koszykowa 75, 00-662 Warsaw, Poland
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G. Catalanotti;
G. Catalanotti
4
Institute of Science and Innovation in Mechanical and Industrial Engineering
, Rua Dr. Roberto Frias 400, 4200-465 Porto, Portugal
5Department of Mechanical Engineering, Faculty of Engineering,
University of Porto
, Rua Dr. Roberto Frias, 4200-465 Porto, Portugal
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M. Bilewicz
M. Bilewicz
6Institute of Engineering Materials and Biomaterials, Faculty of Mechanical Engineering,
Silesian University of Technology
, Konarskiego 18A, 44-100 Gliwice, Poland
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A. Katunin
1,*
K. Krukiewicz
2
R. Turczyn
2
P. Sul
3
A. Łasica
3
G. Catalanotti
4,5
M. Bilewicz
6
1Institute of Fundamentals of Machinery Design, Faculty of Mechanical Engineering,
Silesian University of Technology
, Konarskiego 18A, 44-100 Gliwice, Poland
2Department of Physical Chemistry and Technology of Polymers, Faculty of Chemistry,
Silesian University of Technology
, M. Strzody 9, 44-100 Gliwice, Poland
3Institute of Theory of Electrical Engineering, Measurement and Information Systems, Faculty of Electrical Engineering,
Warsaw University of Technology
, Koszykowa 75, 00-662 Warsaw, Poland
4
Institute of Science and Innovation in Mechanical and Industrial Engineering
, Rua Dr. Roberto Frias 400, 4200-465 Porto, Portugal
5Department of Mechanical Engineering, Faculty of Engineering,
University of Porto
, Rua Dr. Roberto Frias, 4200-465 Porto, Portugal
6Institute of Engineering Materials and Biomaterials, Faculty of Mechanical Engineering,
Silesian University of Technology
, Konarskiego 18A, 44-100 Gliwice, Poland
*
Corresponding author: [email protected]
AIP Conf. Proc. 1809, 020026 (2017)
Citation
A. Katunin, K. Krukiewicz, R. Turczyn, P. Sul, A. Łasica, G. Catalanotti, M. Bilewicz; Synthesis and testing of a conducting polymeric composite material for lightning strike protection applications. AIP Conf. Proc. 24 February 2017; 1809 (1): 020026. https://doi.org/10.1063/1.4975441
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