4.7 Article

Identifying the Co-Curing Effect of an Accelerated-Sulfur/Bismaleimide Combination on Natural Rubber/Halogenated Rubber Blends Using a Rubber Process Analyzer

期刊

POLYMERS
卷 13, 期 24, 页码 -

出版社

MDPI
DOI: 10.3390/polym13244329

关键词

rubber; curing; strain sweep; rheometer; rubber process analyzer

资金

  1. Ministry of Education, Youth and Sports of the Czech Republic-DKRVO [RP/CPS/2020/004]

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The curing process of 50/50 blends of natural rubber (NR) and two different halogenated rubbers with a combination of conventional accelerated sulfur (CV) and bismaleimide (MF3) at 170 degrees C showed a co-curing reaction via Diels-Alder reaction. The blends cured with CVMF3 exhibited higher network strength, swelling resistance, and mechanical properties compared to those cured with only the CV system.
The rheometer curing curves of 50/50 blends of natural rubber (NR) and two different halogenated rubbers with a combination of conventional accelerated sulfur (CV) and 3 phr of a bismaleimide (MF3) at 170 degrees C indicates that a co-curing reaction has been taken place between NR and the halogenated rubbers via Diels-Alder reaction. To further confirm whether the co-curing reaction has taken place in the early stage of curing, a complex test methodology was applied with the help of a rubber process analyzer. In this test, the blends with CV and with CVMF3 were subjected to cure at 170 degrees C for a predetermined time so that both the CV and CVMF3 cured blends will have the same magnitude of curing torque. It is then cooled down to 40 degrees C and the storage modulus (G ') was evaluated as a function of strain from 0.5% to 100% at a constant frequency of 1 Hz. The results reveal that the blends cured with CVMF3 exhibit a higher G ' due to the enhanced network strength because of the formation of bismaleimide crosslinks than the same cured with only the CV system. The swelling resistance and the mechanical properties of the blends cured with CVMF3 were significantly higher than those cured with only the CV system.

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