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Enhancing performance, durability and service life of industrial rubber products by silica and silane fillers

机译:通过二氧化硅和硅烷填料提高工业橡胶产品的性能,耐用性和使用寿命

摘要

Typical rubber compounds used to manufacture industrial products such as tyres, hoses, conveyor belts, acoustics, shock pads, and engine mountings contain up to eight classes of chemical additives· including curing agents, accelerators, activators, processing aids, and antidegradants. The cure systems in these articles often consists of primary and secondary accelerators, primary and secondary activators, and elemental sulphur. Recent legislation impacting upon the working environment, safety and health has imposed a considerable burden on the manufacturers of rubber compounds to meet various obligations. The selection of raw materials and manufacturing processes that do not harm the environment is of great importance. A novel technique for preparing rubber formulations using crosslinking nanofillers such as silanised precipitated silica has been developed in this research. The silica surfaces were pre-treated with bis[3-triethoxysilylpropyl-] tetrasulphane coupling agent (TESPT).· TESPT is a sulphur containing bifunctional organosilane which chemically adheres silica to rubber and also prevents silica from interfering with the reaction mechanism of sulphur-cure systems. The tetrasulphane groups of the TESPT are rubber reactive and react in the presence of accelerator at elevated temperatures, i.e.140 -260°C, with or without elemental sulphur being present, to form crossIinks in rubbers containing chemically active double bonds for example styrene-butadiene rubber (SBR) and polybutadiene rubber (BR) .. SBR and BR rubber compounds containing 60 phr of TESPT pre-treated silica nanofiller were prepared. The silica particles were fully dispersed in the rubber, which was cured primarily by using sulphur in TESPT. The reaction between the tetrasulphane groups of TESPT and the rubbers was optimised by incorporating different accelerators and activators in the rubber. The mechanical properties of the rubber vulcanisates such as hardness, tear strength, tensile strength, elongation at break, stored' energy density at break, abrasion resistance, modulus and cyclic fatigue life were increased significantly when the treated silica filler was added. The need for the accelerator and activator was dependent on the composition of the rubber. Interestingly, the rubbers were fully cured without the use of elemental sulphur, secondary accelerator and secondary activator. As a result, a substantial reduction in the use of the curing chemicals was achieved without compromising the important properties of rubber compounds which are essential for maintaining long life and good performance of industrial rubber products in service. This approach has also helped to improve health and safety within the workplace and minimise harm to the enviromnent.Furthermore, a significant cost saving was achieved after reducing the number of curing chemicals in the rubber.
机译:用于制造工业产品(例如轮胎,软管,传送带,声学,减震垫和发动机支架)的典型橡胶混合物包含多达八类化学添加剂,包括固化剂,促进剂,活化剂,加工助剂和抗降解剂。这些文章中的固化系统通常由一级和二级促进剂,一级和二级活化剂以及元素硫组成。最近影响工作环境,安全和健康的立法给橡胶混合物制造商带来了很大的负担,以履行其各种义务。选择对环境无害的原材料和制造工艺非常重要。在这项研究中,已经开发出一种使用交联纳米填料(例如硅烷化沉淀二氧化硅)制备橡胶配方的新技术。二氧化硅表面用双[3-三乙氧基甲硅烷基丙基-]四硫烷偶联剂(TESPT)进行了预处理。·TESPT是一种含硫的双官能有机硅烷,可将二氧化硅化学粘合到橡胶上,还可以防止二氧化硅干扰硫化反应的机理系统。 TESPT的四硫烷基团是橡胶反应性的,在存在促进剂的情况下,在高温下(即140 -260°C)存在或不存在元素硫的情况下,会发生反应,从而在含有化学活性双键(例如苯乙烯-丁二烯)的橡胶中形成交联油墨。橡胶(SBR)和聚丁二烯橡胶(BR)..制备了含有60 phr TESPT预处理的二氧化硅纳米填料的SBR和BR橡胶混合物。二氧化硅颗粒完全分散在橡胶中,该橡胶主要通过在TESPT中使用硫进行固化。通过在橡胶中加入不同的促进剂和活化剂,可以优化TESPT的四硫烷基团与橡胶之间的反应。当加入处理过的二氧化硅填料时,橡胶硫化橡胶的机械性能,例如硬度,撕裂强度,拉伸强度,断裂伸长率,储存的断裂能量密度,耐磨性,模量和循环疲劳寿命大大提高。对促进剂和活化剂的需要取决于橡胶的组成。有趣的是,无需使用元素硫,辅助促进剂和辅助活化剂即可将橡胶完全固化。结果,在不损害橡胶混料的重要性能的前提下,大大减少了固化化学品的使用,这对于维持使用寿命长和在使用中的工业橡胶产品的良好性能是必不可少的。这种方法还有助于改善工作场所的健康和安全,并最大程度地减少对环境的危害。此外,减少了橡胶中的固化剂数量后,可节省大量成本。

著录项

  • 作者

    Wang Li;

  • 作者单位
  • 年度 2007
  • 总页数
  • 原文格式 PDF
  • 正文语种 English
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