Surface treatments of nitrile butadiene rubber to enhance wear resistance and mechanical properties
https://doi.org/10.32362/2410-6593-2025-20-6-612-621
EDN: YIHUJZ
Abstract
Objectives. The aim of this work is to investigate rapid surface treatment methods of nitrile butadiene rubber (NBR) using an elastomer composition based on fluoropolymer FKM-32 and fluoroplastic F32L. The article presents new methods for enhancing the mechanical and wear properties of NBR by applying surface coatings.
Methods. Abrasion tests were conducted using an MI-2 tribometer; determination of the tensile strength properties of the samples was performed using a DVT GP UG 5 universal testing machine (Devotrans, Turkey). Hardness was ascertained using a Shore A type durometer. Samples were cut out on a pneumatic punching press GT-7016-AR (GOTECH Testing Machines Inc., Istanbul, Turkey). Microstructure and elemental composition studies were carried out using a Vega 3 scanning electron microscope (TESCAN, Brno, Czech Republic) equipped with an X-Act (Oxford Instruments, High Wycombe, United Kingdom) energy-dispersive analysis attachment.
Results. The immersion of NBR in a 10% solution of poly(vinylidene fluoride-co-chlorotrifluoroethylene) (fluoroplast F32L) in 1,1,2-trifluoro-1,2,2-trichloroethane was found to result in the formation of a uniform fluoropolymer-based coating on the rubber surface. This coating results in a decrease in the abrasion value from 0.046 to 0.005 m3/TJ, corresponding to an increase in abrasion resistance. Furthermore, for rubbers coated by immersion in the fluoroplastic solution, the modulus at 100% and 300% strain increases by 86% and 44%, respectively, while the tensile strength increases by 20%, and the hardness increases by 9 units compared to the as-obtained NBR.
Conclusions. Regardless of pre-soaking in methyl ethyl ketone, the wear resistance of the synthetic rubber is not increased by surface treatment with elastomeric composition based on fluororubber FKM-32 grade followed by thermostating. However, surface-modification of NBR using the M3 method demonstrates better tribological performance and mechanical performance than the untreated sample. A complex of enhanced properties of surface-modified NBR-M3 can be effected by the presence of halogen atoms on the surface layer of the rubber sample.
About the Authors
K. V. SukharevaRussian Federation
Ksenia V. Sukhareva, Cand. Sci. (Chem.), Associate Professor, Head of the Basic Department of the Industry of Quality; Leading Researcher, Laboratory of Physical Chemistry of Compositions of Synthetic and Natural Polymers
Scopus Author ID 57191042974
36, Stremyannyi per., Moscow, 115054
4, Kosygina ul., Moscow, 119334
Competing Interests:
The authors declare no competing interests.
I. A. Mikhailov
Russian Federation
Igor A. Mikhailov, Cand. Sci. (Chem.), Director of the Joint Research Center; Laboratory of Physical Chemistry of Compositions of Synthetic and Natural Polymers
Scopus Author ID 57199507317, ResearcherID M-7163-2016
36, Stremyannyi per., Moscow, 115054
4, Kosygina ul., Moscow, 119334
Competing Interests:
The authors declare no competing interests.
B. B. Khaidarov
Russian Federation
Bekzod B. Khaidarov, Cand. Sci. (Eng.), Associate Professor; Department of Functional Nanosystems and High-Temperature Materials
Scopus Author ID 57223169688
4, Leninskii pr., Moscow, 119049
Competing Interests:
The authors declare no competing interests.
A. D. Buluchevskaya
Russian Federation
Anastasia D. Buluchevskaya, Assistant, Basic Department of Chemistry of Innovative Materials and Technologies
36, Stremyannyi per., Moscow, 115054
Competing Interests:
The authors declare no competing interests.
I. N. Burmistrov
Russian Federation
Igor N. Burmistrov, Dr. Sci. (Eng.), Leading Engineer of the Scientific Project, Department of Functional Nanosystems and HighTemperature Materials
Scopus Author ID 55042347200, ResearcherID A-8212-2014
4, Leninskii pr., Moscow, 119049
Competing Interests:
The authors declare no competing interests.
References
1. Ning K., Lu J., Xie P., Hu J., Huang J., Sheng K. Study on Surface Modification of Silicone Rubber for Composite Insulator by Electron Beam Irradiation. Nucl Instrum Methods Phys Res B. 2021;499:7–16. https://doi.org/10.1016/j.nimb.2021.04.019
2. Song J., Vancso G.J. Effects of Flame Treatment on the Interfacial Energy of Polyethylene Assessed by Contact Mechanics. Langmuir. 2008;24:4845–4852. https://doi.org/10.1021/la7035532
3. Romero-Sánchez M.D., Pastor-Blas M.M., Martín-Martínez J.M., Zhdan P.A. Watts J.F. Surface Modifications of a Vulcanized Rubber Using Corona Discharge and Ultraviolet Radiation Treatments. J Mater Sci. 2001;36:5789–5799. https://doi.org/10.1023/A:1012999820592
4. Martínez L., Álvarez L., Huttel Y., Méndez J., Román E., Vanhulsel A., Verheyde B., Jacobs R. Surface Analysis of NBR and HNBR Elastomers Modified with Different Plasma Treatments. Vacuum. 2007;81:1489–1492. https://doi.org/10.1016/j.vacuum.2007.04.025
5. Kavc T., Kern W., Ebel M.F., Svagera R., Pölt P. Surface Modification of Polyethylene by Photochemical Introduction of Sulfonic Acid Groups. Chemistry of Materials. 2000;12:1053–1059. https://doi.org/10.1021/cm991158p
6. Nuzaimah M., Sapuan S.M., Nadlene R., Jawaid M. Effect of Surface Treatment on the Performance of Polyester Composite Filled with Waste Glove Rubber Crumbs. Waste and Biomass Valorization. 2020;12(2). https://doi.org/10.1007/s12649-020-01008-2
7. Lu X., Wang J., Cai S., Niu B., He Q., He X. Improving Thermo‐oxidative Stability and Mediums Resistance of Nitrile Rubber via Surface Superhydrophobic Modification. J. Appl. Polym. Sci. 2022;139(17). https://doi.org/10.1002/app.52016
8. Yang Q., Chen S., Gao S., Wan S., He X. Improving Thermal‐oxidative Stability of Nitrile Butadiene Rubber Composites by Surface Modification of Zirconium Phosphate. Polym. Compos. 2023;44:505–514. https://doi.org/10.1002/pc.27113
9. Wu Y.M., Liu J.Q., Cao H.T., Wu Z.Y., Wang Q., Ma Y.P., Jiang H., Wen F., Pei Y.T. On the Adhesion and Wear Resistance of DLC Films Deposited on Nitrile Butadiene Rubber: A Ti-C Interlayer. Diam Relat Mater. 2020;101. https://doi.org/10.1016/j.diamond.2019.107563
10. Zhou Z., Han Y., Qian J. Improving Mechanical and Tribological Behaviors of GLC Films on NBR under Water Lubrication by Doping Ti and N. Coatings. 2022;12. https://doi.org/10.3390/coatings12070937
11. Nudelman Z.N., Dontsov A.A., Novitskaya S.P. Ftorelastomery (Fluoroelastomers). Moscow: Khimiya; 1988. 240 p. (In Russ.).
12. Dontsov A.A., Lozovik G.Ya., Novitskaya S.P. Khlorirovannye polimery (Chlorinated Polymers). Moscow: Khimiya; 1979. 232 p. (In Russ.).
13. Tutorsky I.A., Potapov E.E., Shvarts A.G. Khimicheskaya modifikatsiya elastomerov (Chemical Modification of Elastomers). Moscow: Khimiya; 1993. 304 p. (In Russ.).
14. Nudelman Z.N. Ftorkauchuki: osnovy, pererabotka, primenenie (Fluororubbers: Fundamentals, Processing, Application). Moscow: PIF RIAS; 2007. 383 p. (In Russ.).
15. Nudelman Z.N., Galil-ogly F.A., Novikov A.S. Ftorkauchuki i reziny na ikh osnove (Fluororubbers and Rubbers Based on Them). Moscow: Khimiya; 1966. 234 p. (In Russ.).
16. Adov M.V., Zuev A.V., Pichkhidze S.Ya., Yurovsky V.S. Application of Fine Rubber Powder Based on Chloroprene Rubber in the Formulation of Rubber Compounds Based on This Rubber. Kauchuk i rezina. 2010;4:25–27 (in Russ.).
17. Pastor-Blas M.M., Martín-Martínez J.M. Different Surface Modifications Produced by Oxygen Plasma and Halogenation Treatments on a Vulcanized Rubber. J. Adhes. Sci. Technol. 2002;16:409–428. https://doi.org/10.1163/156856102760067190
18. Abbott S.G., Brewis D.M., Manley N.E., Mathieson I., Oliver N.E. Solvent-Free Bonding of ShoeSoling Materials. Int. J. Adhes. 2003;23:225–230. https://doi.org/10.1016/S0143-7496(03)00025-3
19. Daniel P., Thian H.Ng., Heam K.T., Roger L., Matt J.C. The effects of chlorination, thickness, and moisture on glove donning efficiency. Ergonomics. 2021;64(3). https://doi.org/10.1080/00140139.2021.1907452
20. Khan M.S., Heinrich G. PTFE-Based Rubber Composites for Tribological Applications. Advanced Rubber Composites. 2010:249–310. https://doi.org/10.1007/12_2010_98
21. Belov N.A., Alentiev A.Y., Bogdanova Y.G., Vdovichenko A.Y., Pashkevich D.S. Direct Fluorination as Method of Improvement of Operational Properties of Polymeric Materials. Polymers (Basel). 2020;12. https://doi.org/10.3390/polym12122836
22. Qiang G., Changou P., Pengwei X., Mingliang P., Peng L. Fluorination of nitrile-butadiene rubber without gelation via radical graft polymerization in presence of chain transfer agent. European Polymer Journal. 2021;151. https://doi.org/10.1016/j.eurpolymj.2021.110442
23. Gao J., Dai Y., Wang X., Huang J., Yao J., Yang J., Liu X. Effects of Different Fluorination Routes on Aramid Fiber Surface Structures and Interlaminar Shear Strength of Its Composites. Appl Surf Sci. 2013;270:627–633. https://doi.org/10.1016/j.apsusc.2013.01.099
24. Qiang G., Changou P., Siwei Sh., Pengwei X., Mingliang P., Peng L. Facile fluorination of nitrile-butadiene rubber via olefin cross metathesis. Polymer. 2021;217. https://doi.org/10.1016/j.polymer.2021.123455
25. Yang X., Yang C., Nie M. Industrial Preparation of SelfLubricating Polyurethane via Direct Fluorination with Gaseous Fluorine. ACS Omega. 2022;7:28388–28395. https://doi.org/10.1021/acsomega.2c03019
26. Belov N.A., Pashkevich D.S., Alentiev A.Y., Tressaud A. Effect of Direct Fluorination on the Transport Properties and Swelling of Polymeric Materials: A Review. Membranes. 2021;11(9). https://doi.org/10.3390/membranes11090713
27. Kharitonov A.P. Direct Fluorination of Polymers ‒ From Fundamental Research to Industrial Applications. Prog Org Coat. 2008;61:192–204. https://doi.org/10.1016/j.porgcoat.2007.09.027
28. Mostafa A., Abouel-Kasem A., Bayoumi M.R., El-Sebaie M.G. Insight into the Effect of CB Loading on Tension, Compression, Hardness and Abrasion Properties of SBR and NBR Filled Compounds. Mater Des. 2009;30: 1785–1791. https://doi.org/10.1016/j.matdes.2008.07.037
Review
For citations:
Sukhareva K.V., Mikhailov I.A., Khaidarov B.B., Buluchevskaya A.D., Burmistrov I.N. Surface treatments of nitrile butadiene rubber to enhance wear resistance and mechanical properties. Fine Chemical Technologies. 2025;20(6):612-621. https://doi.org/10.32362/2410-6593-2025-20-6-612-621. EDN: YIHUJZ
JATS XML






















