The influence of gamma radiation on the mechanical performance, anisotropy, and oil resistance of NBR and HNBR composites reinforced with silica and lignin fillers
E.S. Fathy , Heba A. Raslan , H. Radi , Magdy A. Ali , Khaled F. El-Nemr
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引用次数: 0
Abstract
In the present work, at room temperature via a mechanical rotary mill, various composites based on Acrylonitrile butadiene rubber (NBR) and Hydrogenated acrylonitrile butadiene rubber (HNBR) have been prepared. As a comparative behavior in both types of rubber, different types of composites were fabricated based on different ratios of silica (S) and lignin (L). After that, all composites were subjected to gamma radiation at different doses to study the effect of ionizing radiation on the prepared composites. The anisotropy comparisons were performed for fabricated composites derived from NBR and HNBR. The prepared composites were investigated by Fourier transform infrared (FTIR), X-ray diffraction (XRD), Thermogravimetric analysis (TGA), and mechanical parameters, swelling in brake oil, and mechanical properties after immersion in oil. In general, the presence of silica and lignin in the rubber matrix improved the properties of the composites and revealed anisotropy behavior towards the two kinds of rubber. Significances moreover show that when 10 phr of silica is substituted by lignin, the mass loss temperatures for composites are decreased because lignin has a lower thermal degradation temperature than silica filler. Furthermore, the mechanical properties after brake oil immersion reveal that HNBR is more oil-resistant than NBR. Also, the studied parameters insured a strong coordination interaction occurred between Zn2+ of ZnCl2 particles and CN groups of NBR or HNBR matrix during heat pressing, which resulting in an enhancement of mechanical and thermal properties.
期刊介绍:
Radiation Physics and Chemistry is a multidisciplinary journal that provides a medium for publication of substantial and original papers, reviews, and short communications which focus on research and developments involving ionizing radiation in radiation physics, radiation chemistry and radiation processing.
The journal aims to publish papers with significance to an international audience, containing substantial novelty and scientific impact. The Editors reserve the rights to reject, with or without external review, papers that do not meet these criteria. This could include papers that are very similar to previous publications, only with changed target substrates, employed materials, analyzed sites and experimental methods, report results without presenting new insights and/or hypothesis testing, or do not focus on the radiation effects.