首页> 外文期刊>Rubber Chemistry and Technology >SILICA-REINFORCED NATURAL RUBBER TIRE TREAD COMPOUNDS CONTAINING BIO-BASED PROCESS OILS. I: ASPECTS OF MIXING SEQUENCE AND EPOXIDE CONTENT
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SILICA-REINFORCED NATURAL RUBBER TIRE TREAD COMPOUNDS CONTAINING BIO-BASED PROCESS OILS. I: ASPECTS OF MIXING SEQUENCE AND EPOXIDE CONTENT

机译:二氧化硅增强的天然橡胶轮胎胎面化合物,含有基于生物的工艺油。 I:混合序列和环氧化物含量的方面

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摘要

A bio-based process oil for rubber compounds is one of the compounding ingredients to be used toward an eco-friendly and more sustainable rubber technology. This work investigates epoxidized palm oil (EPO) as an alternative for petroleum-based process oil in silica-reinforced natural rubber (NR) tire tread compounds. The effect of different incorporating steps of EPO on the properties of the rubber compounds is first studied, taking into account that the polar functional groups in the oil molecules may interact with the silanol groups on the silica surface. The properties of silica-reinforced NR compounds with EPO oil are compared with that of reference mixes with treated distillate aromatic extract (TDAE) and without oil. The compounds with EPO show a lower viscosity, filler-filler interaction, and flocculation rate constant but higher cure reaction rate constants compared with the compound with TDAE. The results indicate that the epoxide groups in EPO interact with the silanol groups on the silica surface, promoting a greater shielding effect on the polar surface and thus better silica dispersion and less interference with the vulcanization reaction. The different incorporating steps of EPO show no significant effect on the viscosity, filler-filler interaction, or flocculation rate constant but clearly affect the extent of crosslinking, as indicated by the cure torque difference. The presence of EPO in an early stage of the mixing together with the first half addition of silica and silane results in the lowest cure torque difference, modulus, and tensile strength (i.e., the highest tan delta at 60 degrees C), which indicates a possible obstruction for the interaction between the silanol groups and silane coupling agent by the EPO molecules. Comparing EPO with different epoxide contents in the range of 1-3 mol%, the increase in epoxide content gives similar Payne effects but enhances the cure reaction, resulting in improved tensile properties and tan delta at 60 degrees C. The results clearly prove that EPO can be used as a TDAE alternative.
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  • 来源
    《Rubber Chemistry and Technology》 |2020年第2期|共18页
  • 作者单位

    Prince Songkla Univ Fac Sci &

    Technol Dept Rubber Technol &

    Polymer Sci Pattani Campus Pattani 94000 Thailand;

    Univ Twente Fac Engn Technol Elastomer Technol &

    Engn Dept Mech Solids Surfaces &

    Syst MS3 POB 217 NL-7500 AE Enschede Netherlands;

    Univ Twente Fac Engn Technol Elastomer Technol &

    Engn Dept Mech Solids Surfaces &

    Syst MS3 POB 217 NL-7500 AE Enschede Netherlands;

    Univ Twente Fac Engn Technol Elastomer Technol &

    Engn Dept Mech Solids Surfaces &

    Syst MS3 POB 217 NL-7500 AE Enschede Netherlands;

    Univ Twente Fac Engn Technol Elastomer Technol &

    Engn Dept Mech Solids Surfaces &

    Syst MS3 POB 217 NL-7500 AE Enschede Netherlands;

    Prince Songkla Univ Fac Sci &

    Technol Dept Rubber Technol &

    Polymer Sci Pattani Campus Pattani 94000 Thailand;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 橡胶工业;
  • 关键词

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