Durability of physical and mechanical properties of polymers exposed to chemical and climatic environments

Authors

  • Martina Juglová Vojenský výzkumný ústav, s. p., Veslařská 230, 637 00 Brno, Czech Republic
  • Regina Mikulíková Vojenský výzkumný ústav, s. p., Veslařská 230, 637 00 Brno, Czech Republic
  • Jan Křesťan Vojenský výzkumný ústav, s. p., Veslařská 230, 637 00 Brno, Czech Republic

DOI:

https://doi.org/10.14311/AP.2026.66.0145

Keywords:

durability, polymers, chemical resistance, climatic resistance, physical and mechanical properties

Abstract

Polymeric materials are widely used in military and defence applications, including personal and vehicle ballistic protection, protective masks and suits, vehicle components, and ammunition transport and storage packaging. In these applications, polymers are exposed to harsh environmental conditions and extreme temperatures, which can significantly affect their long-term performance. In this study, commercially available polymeric materials based on polyethylene (PE), polypropylene (PP) modified with thermoplastic elastomer (TPE) at different PP/TPE compositions, polyetheretherketone (PEEK), and polyamide (PA) were studied. The materials were exposed to selected chemical agents, namely fuels (gasoline) and decontaminants (hypochlorite decontamination mixture), as well as to climatic conditions including high (+100 °C) and low (−40 °C) temperatures, high humidity and UV radiation. The aim of this study was to determine the durability physical and mechanical properties of the polymers in the selected environments with increasing exposure time (from one to six weeks). Hardness (Rockwell and Shore methods), tensile strength, elongation, and tensile modulus were observed. The results showed that exposure to gasoline and UV radiation caused the most pronounced changes. Among the tested materials, PE exhibited the highest overall resistance, showing only minor degradation even under the most aggressive conditions, such as gasoline exposure and UV radiation.

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References

[1] R. H. Lambeth, P. Zarras, A. M. Savage, T. Pruyn. Special issue: Polymers for defense. Polymer International 70(6):693–695, 2021. https://doi.org/10.1002/pi.6228

[2] A. S. Maxwell, W. R. Broughton, G. Dean, G. D. Sims. Review of accelerated ageing methods and lifetime prediction techniques for polymeric materials. Tech. Rep. DEPC MPR 016, National Physical Laboratory, 2005.

[3] J. N. Srivastava, V. S. Pandey, E. P. Namburi. Polymeric materials for defence stores in extreme cold weather. In E. P. Namburi, R. J. H. Wanhill, D. K. Setua (eds.), Novel Defence Functional and Engineering Materials (NDFEM), vol. 2, pp. 93–131. Springer Nature, Singapore, 2024. https://doi.org/10.1007/978-981-99-9795-4_4

[4] I. O. Oladele, T. F. Omotosho, A. A. Adediran. Polymer-based composites: An indispensable material for present and future applications. International Journal of Polymer Science 2020(1):8834518, 2020. https://doi.org/10.1155/2020/8834518

[5] S. Siengchin. A review on lightweight materials for defence applications: Present and future developments. Defence Technology 24:1–17, 2023. https://doi.org/10.1016/j.dt.2023.02.025

[6] K. Czech, R. Oliwa, D. Krajewski, et al. Hybrid polymer composites used in the arms industry: A review. Materials 14(11):3047, 2021. https://doi.org/10.3390/ma14113047

[7] S. Rolc, J. Buchar, J. Křesťan, et al. Panceřová ochrana [In Czech; Armour protection]. Academia, Prague, Czech Republic, 2022.

[8] S. Ronca. Chapter 10 – Polyethylene. In M. Gilbert (ed.), Brydson’s Plastics Materials, pp. 247–278. Butterworth-Heinemann, 8th edn., 2017. https://doi.org/10.1016/B978-0-323-35824-8.00010-4

[9] J. L. Jordan, D. T. Casem, J. M. Bradley, et al. Mechanical properties of low density polyethylene. Journal of Dynamic Behavior of Materials 2(4):411–420, 2016. https://doi.org/10.1007/s40870-016-0076-0

[10] J. L. Jordan, R. L. Rowland, J. Greenhall, et al. Elastic properties of polyethylene from high pressure sound speed measurements. Polymer 212:123164, 2021. https://doi.org/10.1016/j.polymer.2020.123164

[11] J. R. Fried. Polymer science and technology. Prentice Hall, 3rd edn., 2014.

[12] A. Calhoun. 3 – Polypropylene. In J. R. Wagner (ed.), Multilayer Flexible Packaging, Plastics Design Library, pp. 35–45. William Andrew Publishing, 2nd edn., 2016. https://doi.org/10.1016/B978-0-323-37100-1.00003-X

[13] H. A. Maddah. Polypropylene as a promising plastic: A review. American Journal of Polymer Science 6(1):1–11, 2016. https://doi.org/10.5923/j.ajps.20160601.01

[14] D. Puhan, J. S. S. Wong. Properties of polyetheretherketone (PEEK) transferred materials in a PEEK-steel contact. Tribology International 135:189–199, 2019. https://doi.org/10.1016/j.triboint.2019.02.028

[15] X. Ling, X. Jing, C. Zhang, S. Chen. Polyether ether ketone (PEEK) properties and its application status. IOP Conference Series: Earth and Environmental Science 453(1):012080, 2020. https://doi.org/10.1088/1755-1315/453/1/012080

[16] D. L. Francisco, L. B. Paiva, W. Aldeia. Advances in polyamide nanocomposites: A review. Polymer Composites 40(3):851–870, 2019. https://doi.org/10.1002/pc.24837

[17] M. Y. Kondo, L. S. Montagna, G. F. de Melo Morgado, et al. Recent advances in the use of polyamide-based materials for the automotive industry. Polímeros 32(2):e2022023, 2022. https://doi.org/10.1590/0104-1428.20220042

[18] Úřad pro technickou normalizaci, metrologii a státní zkušebnictví. ČSN EN ISO 527-2 (640604). Plasty – Stanovení tahových vlastností – Část 2: Zkušební podmínky pro tvářené plasty [In Czech; Plastics – Determination of tensile properties – Part 2: Test Conditions for moulding and extrusion plastics], 2012.

[19] Deutsches Institut für Normung. DIN 50 017. Condensation water test atmospheres, 1982.

[20] Úřad pro technickou normalizaci, metrologii a státní zkušebnictví. ČSN EN ISO 16474-2 (673117). Nátěrové hmoty – Metoda vystavení laboratorním zdrojům světla – Část 2: Xenonové lampy [In Czech; Paints and varnishes – Methods of exposure to laboratory light sources – Part 2: Xenon-arc lamps], 2014.

[21] Úřad pro technickou normalizaci, metrologii a státní zkušebnictví. ČSN EN ISO 527-1 (640604). Plasty – Stanovení tahových vlastností – Část 1: Obecné principy [In Czech; Plastics – Determination of tensile properties – Part 1: General principles], 2020.

[22] Úřad pro technickou normalizaci, metrologii a státní zkušebnictví. ČSN EN ISO 2039-2 (640619). Plasty – Stanovení tvrdosti – Část 2: Tvrdost dle Rockwella [In Czech; Plastics – Determination of hardness – Part 2: Rockwell hardness], 2000.

[23] Úřad pro technickou normalizaci, metrologii a státní zkušebnictví. ČSN ISO 48-4 (621433). Pryž, vulkanizovaný nebo termoplastický elastomer – Stanovení tvrdosti – Část 4: Tvrdost metodou vtlačování hrotu tvrdoměru (tvrdost Shore) [In Czech; Rubber, vulcanized or thermoplastic – Determination of hardness – Part 4: Indentation hardness by durometer method (Shore hardness)], 2019.

[24] P. Ren, T. Li, L. Feng, et al. Thermal degradation of polyamide 6: Mechanisms, mitigation strategies, and challenges. Chemical Engineering Science 316:121985, 2025. https://doi.org/10.1016/j.ces.2025.121985

[25] M. M. Brette, A. H. Holm, A. D. Drozdov, J. de Claville Christiansen. Pure hydrolysis of polyamides: A comparative study. Chemistry 6(1):13–50, 2024. https://doi.org/10.3390/chemistry6010002

[26] E. Parodi, G. W. M. Peters, L. E. Govaert. Prediction of plasticity-controlled failure in polyamide 6: Influence of temperature and relative humidity. Journal of Applied Polymer Science 135(11):45942, 2018. https://doi.org/10.1002/app.45942

[27] P. Wetzel, A. K. Sambale, K. Uhlig, et al. Hygromechanical behavior of polyamide 6.6: Experiments and modeling. Polymers 15(16):3387, 2023. https://doi.org/10.3390/polym15163387

[28] L. M. Hernandez, J. Grant, P. S. Fard, et al. Analysis of ultraviolet and thermal degradations of four common microplastics and evidence of nanoparticle release. Journal of Hazardous Materials Letters 4:100078, 2023. https://doi.org/10.1016/j.hazl.2023.100078

[29] P. Gijsman, G. Meijers, G. Vitarelli. Comparison of the UV-degradation chemistry of polypropylene, polyethylene, polyamide 6 and polybutylene terephthalate. Polymer Degradation and Stability 65(3):433–441, 1999. https://doi.org/10.1016/S0141-3910(99)00033-6

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Published

2026-05-15

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How to Cite

Juglová, M., Mikulíková, R., & Křesťan, J. (2026). Durability of physical and mechanical properties of polymers exposed to chemical and climatic environments. Acta Polytechnica, 66(2), 145–154. https://doi.org/10.14311/AP.2026.66.0145