Thermal and stress-strain state of friction pairs in ventilated disc brakes of lightweight vehicles

O. Dykha, K. Holenko, J. Padgurskas, O. Babak
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Abstract

The work is dedicated to the thermal behavior and stress-strain state of ventilated disc brakes installed in the lightweight vehicles (scooters, electric bikes, ATVs, etc.) using ANSYS environment in various experiment modes. Modeling of the temperature distribution in the rotor (disc) and the corresponding brake pads is determined taking into account a number of factors and input parameters during the braking operation: the amount of rotation speed, the gap between the pads and the disc, the speed of load application, thermal expansion, etc. Numerical modeling of the transient thermal and the stress fields in the area of contact between the pads and the rotor is carried out by the method of sequential thermostructural connection of the intermediate calculation states of the brake model in the ANSYS Coupled Field Transient environment. For a comprehensive assessment of brake behavior, our research considers two load approaches: constant long-term (20 s) with an influence factor in the form of thermal expansion as a result of contact pair friction; linear load from the pads on the disс with a corresponding increase in pressure up to the moment when the rotation of the system is blocked. Our research presents an assessment of the rotor ventilation channels influence on the nature of the contact spot with the brake pads (open far-field contact, sliding contact, sticking contact, etc.). In addition, it is demonstrated that despite the linear increase in pads pressure on the rotor, the graphs of temperatures, volume (thermal expansion) and stresses are of parabolic character with a disproportionate increase in indicators. Such a result forces us to come to the conclusion that it is not possible to predict the behavior of the brakes based on the analysis during a short period of time of the experiment - conducting long-term analytical studies is extremely important in the case of brakes
轻型车辆通风盘式制动器摩擦副的热应力-应变状态
这项工作致力于使用ANSYS环境在各种实验模式下研究安装在轻型车辆(踏板车、电动自行车、ATV等)中的通风盘式制动器的热行为和应力-应变状态。转子(制动盘)和相应制动片中温度分布的建模是在考虑制动操作过程中的许多因素和输入参数的情况下确定的:转速、制动片和制动盘之间的间隙、负载施加速度、热膨胀等。在ANSYS耦合场瞬态环境中,采用制动模型中间计算状态的顺序热结构连接方法,对制动片与转子接触区域的瞬态热场和应力场进行了数值模拟。为了全面评估制动性能,我们的研究考虑了两种载荷方法:恒定长期(20 s),其影响因素为接触副摩擦引起的热膨胀;从制动盘上的制动垫产生的线性载荷,压力相应增加,直到系统旋转受阻。我们的研究评估了转子通风通道对制动片接触点性质的影响(开放式远场接触、滑动接触、粘着接触等)。此外,还表明,尽管制动片对转子的压力呈线性增加,体积(热膨胀)和应力具有抛物线特征,并且指标不成比例地增加。这样的结果迫使我们得出结论,即不可能在短时间的实验中基于分析来预测制动器的行为——在制动器的情况下,进行长期的分析研究极其重要
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