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Silica-filled tire tread compounds: an investigation into the viscoelastic properties of the rubber compounds and their relation to tire performance

机译:二氧化硅填充的轮胎胎面胶料:橡胶胶料的粘弹性特性及其与轮胎性能的关系研究

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摘要

With increasing the global concern for fossil fuel consumption, automotive industry moves toward more efficient vehicles. Tires are of great importance in this respect, as the tire compound material in contact with the road surface and under the cyclic deformation dissipates energy due to its viscoelastic nature. On the other hand the friction between the road and the tire surface is required for a safe drive. These two contrary characteristics of the tire need a compromise to deliver a secure and efficient ride. Regarding the environmental issues, since July 1st, 2012, all the tire manufacturers in Europe are obliged to provide an efficiency label for their tires indicating three characteristics which includes fuel efficiency (related to Rolling Resistance (RR) performance) and safety (related to Wet Skid (WS) performance). Present thesis deals with these two important aspects of the tire; RR and WS, investigating on a green tire tread material. Loss factor (tanδ) is a determining parameter in analyzing the tire tread material performance. It has been accepted that the tanδ value of a tread compound measured at a temperature around 60°C and a frequency of 10Hz can be representative of the Rolling Resistance performance of a tire made thereof. However for Wet Skid performance the situation is a bit different. In order to predict Wet Skid, the viscoelastic properties of the rubber materials at high frequencies, in the megahertz (MHz) range, should be measured which is not feasible with the current laboratory facilities. Nonetheless Viscoelastic master curves derived from time-temperature superposition (TTS) can be used to describe the properties of the tread materials over a wide frequency range. Part of this thesis deals with different dynamic mechanical measuring methods and the analysis afterwards to receive a reliable viscoelastic mastercurve and defines the interpretations of the results. With the introduction of silica technology in passenger car tire tread applications, the filler-polymer interactions have become of key importance. Besides the silane coupling agents and control of the silanization process, a polymer functionality can play an essential role in the polymer-filler interactions. The aim is to reduce the hydrophobic characteristics of the hydrocarbon polymers and make them more compatible with hydrophilic silica, thereby giving better silica dispersion and better polymer-filler interactions. Second part of the thesis deals with employing the new generation of Styrene-Butadiene Rubbers which are functionalized either in the backbone or at the chain-end. The dynamic mechanical measurements on the tread compounds made from these rubbers reveal the significant potential of these modified SBRs to reduce RR of tire treads made thereof, while no major change in WS occurs.
机译:随着全球对化石燃料消耗的关注日益增加,汽车工业朝着更高效的车辆发展。轮胎在这方面非常重要,因为与路面接触并处于周期性变形下的轮胎胶料由于其粘弹性而消耗能量。另一方面,道路和轮胎表面之间的摩擦是安全行驶所必需的。轮胎的这两个相反的特性需要折衷以提供安全和有效的行驶。关于环境问题,自2012年7月1日起,欧洲所有轮胎制造商都必须为其轮胎提供效率标签,其中应标明三个特性,包括燃油效率(与滚动阻力(RR)性能相关)和安全性(与湿润相关)防滑(WS)性能)。本论文涉及轮胎的这两个重要方面。 RR和WS,正在研究绿色胎面材料。损耗因子(tanδ)是分析轮胎胎面材料性能的决定性参数。已经接受的是,在约60℃的温度和10Hz的频率下测量的胎面胶的tanδ值可以代表由其制成的轮胎的滚动阻力性能。但是,对于湿滑性能,情况有所不同。为了预测湿滑,应测量橡胶材料在兆赫兹(MHz)范围内的高频粘弹性,这在当前的实验室设施中是不可行的。尽管如此,从时间温度叠加(TTS)得出的粘弹性主曲线仍可用于描述胎面材料在较宽频率范围内的特性。本文的一部分涉及不同的动态力学测量方法,随后进行分析以得到可靠的粘弹性主曲线并定义结果的解释。随着二氧化硅技术在乘用车轮胎胎面应用中的引入,填料与聚合物之间的相互作用变得至关重要。除了硅烷偶联剂和硅烷化过程的控制以外,聚合物官能度还可以在聚合物与填料的相互作用中发挥重要作用。目的是降低烃类聚合物的疏水性并使它们与亲水性二氧化硅更相容,从而提供更好的二氧化硅分散性和更好的聚合物-填料相互作用。本文的第二部分涉及使用在骨架或链端官能化的新一代苯乙烯-丁二烯橡胶。由这些橡胶制成的胎面胶的动态力学测量表明,这些改性SBR具有显着的潜力,可降低由其制成的轮胎胎面的RR,而WS不会发生重大变化。

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    Maghami, S.;

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  • 年度 2016
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