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Numerical evaluation of the temperature field of steady-state rolling tires

机译:稳态滚动轮胎温度场的数值评估

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Rubber is the main component of pneumatic tires. The tire heating is caused by the hysteresis effects due to the deformation of the rubber during operation. Tire temperatures can depend on many factors, including tire geometry, inflation pressure, vehicle load and speed, road type and temperature and environmental conditions. The focus of this study is to develop a finite element approach to computationally evaluate the temperature field of a steady-state rolling tire. For simplicity, the tire is assumed to be composed of rubber and body-ply. The nonlinear mechanical behavior of the rubber is characterized by a Moo-ney-Rivlin model while the body-ply is assumed to be linear elastic material. The coupled effects of the inflation pressure and vehicle loading are investigated. The influences of body-ply stiffness are studied as well. The simulation results show that loading is the main factor to determine the temperature field. The stiffer body-ply causes less deformation of rubber and consequently decreases the temperature.
机译:橡胶是充气轮胎的主要成分。轮胎加热是由于运行过程中橡胶变形引起的滞后效应引起的。轮胎温度可能取决于许多因素,包括轮胎几何形状,充气压力,车辆负载和速度,道路类型以及温度和环境条件。这项研究的重点是开发一种有限元方法,以计算方式评估稳态滚动轮胎的温度场。为简单起见,假定轮胎由橡胶和车体帘布层组成。橡胶的非线性力学行为由Moo-ney-Rivlin模型表征,而车体帘布层是线性弹性材料。研究了充气压力和车辆负载的耦合效应。还研究了帘布层刚度的影响。仿真结果表明,载荷是确定温度场的主要因素。较硬的帘布层导致橡胶变形较小,因此降低了温度。

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