4.6 Article

Tyre-Road Heat Transfer Coefficient Equation Proposal

期刊

APPLIED SCIENCES-BASEL
卷 13, 期 21, 页码 -

出版社

MDPI
DOI: 10.3390/app132111996

关键词

thermo-mechanical tyre model; heat transfer coefficient; tyre road heat exchange; real time tyre model; tyre thermodynamics

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This research discusses the issue of an important parameter that has not been deeply studied in existing tire models and proposes a simple equation to calculate the real-time tire-road heat transfer coefficient, taking into account the traveling speed of the tire and the length of the contact patch. The results of the equation are consistent with empirical values and provide insights into the variation of this parameter.
Featured Application Advanced thermo-mechanical tyre models, real time vehicle dynamic simulation, heat transfer calcualtion.Abstract Tyres are one of the most important elements of a vehicle because they are the link to the road and have a huge impact on traffic-related pollution. Knowing their behaviour, thus being able to use them at their best and reducing their wear rate, is one of the means of improving their lifetime, which means decreasing traffic environmental impact. In order to understand how tyres behave and to predict the real-time tyre-road coefficient of friction, which is strongly influenced by the temperature, in the last few years several complex thermo-mechanical models of heat transfer inside the tyre have been developed. However, in the current state of the art of the literature and practice, there is still an important parameter regarding such models that is not deeply studied. This parameter is the heat transfer coefficient between the tyre and the road at the contact patch, which usually is considered as a constant. The current research paper allows understanding that such an approximation is not always valid for all of the speeds and tyre loads of city and race cars; instead, it is developed an equation that, for the first time, calculates the real-time, dynamic tyre-road heat transfer coefficient, taking into account the tyre's travelling speed and the footprint length. The equation results are in good agreement with the empirical values coming from the literature and permit understanding how much such a parameter can vary, depending on the tyre use range. The formulation is simple enough to be easily implemented in existing thermodynamic tyre models without requiring meaningful computational time.

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