汽车制动盘和制动垫的机械性能研究

Siviwe Mrausi, J. Trimble, O. Olabanji, I. Tlhabadira, I. Daniyan
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摘要

制动盘和制动垫是汽车制动机构中最关键的性能和安全部件之一。最近在刹车盘和刹车片的发展方面取得了进展,使用了有机和具有成本效益的材料,这些材料对人体健康和环境的危害较小。鉴于此,本研究旨在研究从当地采购的材料开发的汽车刹车片和盘的一些机械性能。首先进行了设计计算,确定了衬垫与转子(内外面)之间的切向力、制动力矩和制动距离以及制动产生的热量。其次,采用Abaqus显式模型进行了磨损、应力、应变分析。在分析制动盘和制动垫上的热力和机械力的连续相互作用时,创建了静态一般步骤和热步骤并依次调用。在静态一般分析步骤中,首先进行热分析,然后将热分析作为机械力分析的初始条件,以确定制动盘和制动垫在要求条件下工作时的磨损、应力和应变分布。结果表明,在耐热性方面,用凯夫拉尔29作为最合适的材料。然而,对于制动盘,当与凯夫拉29结合使用时,在相同的要求使用条件下,材料表现出不同的行为。因此,为了确定最合适的材料,可能需要考虑其他因素,如成本,可制造性,强度等。此外,可能还需要对制动温度和压力等工艺参数进行优化。本研究的结果可能对汽车行业的材料开发商在调查汽车制动部件在所需使用条件下的潜在性能或行为有用。
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Investigating the Mechanical Properties of Automotive Brake Disc and Pad Developed from Locally Sourced Materials
Brake discs and pads are among the most crucial performance and safety components within an automotive braking mechanism. Recent advances in the development of brake discs and pads have witnessed the use of organic and cost-effective materials, which are less harmful to the human health and the environment. In view of this, this study aims to investigate the some mechanical properties of the automotive brake pads and discs developed from locally sourced materials. First, the design calculations were carried out to establish the tangential force between pad and rotor (inner and outer face), the braking torque and distance as well as the amount of heat generated through braking. Secondly, the Abaqus explicit mode was employed for the investigation of the wear, stress, strain analysis. In the analysis of successive interactions of the thermal and mechanical forces on the brake disc and pads, the static general and thermal steps were created and successively invoked. The thermal analysis was first carried and subsequently invoked as the initial conditions for the analysis of mechanical forces in the static general analysis step in order to determine the wear, stress and strain distributions when the brake disc and pad works under the required conditions. The results obtained indicated that with Kevlar 29 stood out as the most suitable material in terms of heat resistance. However, for the brake disc, the materials exhibited different behaviours under the same required service conditions when combined with Kevlar 29. Thus, in order to determine the most suitable material, there may be a need to consider other factors such as cost, manufacturability, strength etc. In addition, there may be a need to carry out optimisation of the process parameters such as the braking temperature and pressure. The findings of this study may be useful for the materials developers in the automotive industry in investigating the potential performance or behavior of automotive braking components under the required service conditions.
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