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Physical Modeling and Simulation Analysis of an Advanced Automotive Racing Shock Absorber using the 1D Simulation Tool AMESim

机译:使用一维仿真工具AMESim的高级赛车减震器的物理建模和仿真分析

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Shock absorbers are crucial components of a vehicle's chassis, responsible for the trade-off between stability, handling, and passenger comfort. Their role is to filter the disturbances imposed to the vehicle body, typically by passive energy dissipation through hydraulic oil. The aim of this research paper is to investigate the physical behavior of an advanced automotive racing shock absorber, known as TTR, developed by Ohlins Racing AB. This goal is achieved by developing a detailed lumped parameter numerical model of the entire TTR suspension in the 1D simulation tool, AMESim. TTR features a through-rod piston design, fully adjustable high and low speed compression and rebound adjusters, and a gas reservoir. The developed numerical model is capable of capturing the physics behind the real shock absorber damping characteristics, under both static and dynamic conditions. In particular, the model is presented in two levels of progressive physical complexity, in order to improve the numerical predictions of dynamic damping characteristics. Several physical phenomena are considered, such as the dynamics of the hydraulic volumes, the static and viscous frictions and the pressure induced elastic deformation of the solid boundaries. Model validation is discussed, based on different types of measurements for both the individual hydraulic components and the entire shock absorber model. The coupled hydraulic and mechanical modeling together with the measurement comparisons, thoroughly discussed in the paper, allows discovering the influence of each single component on the shock absorber static and dynamic performance.
机译:减震器是车辆底盘的关键组件,负责在稳定性,操控性和乘客舒适度之间进行权衡。它们的作用是过滤通常通过液压油消散能量而给车身造成的干扰。本研究报告的目的是研究由Ohlins Racing AB开发的一种先进的赛车减震器的物理性能,该减震器称为TTR。通过在一维仿真工具AMESim中开发整个TTR悬架的详细集总参数数值模型,可以实现此目标。 TTR具有直通活塞设计,完全可调的高低速压缩和回弹调节器以及储气罐。所开发的数值模型能够在静态和动态条件下捕捉真实减震器阻尼特性背后的物理现象。特别是,模型以递进的物理复杂度的两个级别表示,以改善动态阻尼特性的数值预测。考虑了几种物理现象,例如液压体积的动力学,静摩擦和粘滞摩擦以及压力引起的固体边界的弹性变形。基于各个液压组件和整个减震器模型的不同类型的测量,讨论了模型验证。在本文中进行了详尽的讨论,将液压和机械建模以及测量比较结合在一起,可以发现每个单个组件对减震器静态和动态性能的影响。

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