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A novel approach for the design and analysis of nonlinear dampers for automotive suspensions

机译:一种新的汽车悬架非线性阻尼器设计与分析方法

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摘要

This paper proposes an analytical technique for frequency analysis and the design of nonlinear dampers to further improve ride dynamics performance of vehicle suspensions over a wide range of excitation frequencies. Using the energy balance method (EBM), the proposed methodology estimates the equivalent linear damping coefficient of any nonlinear passive damper whose force is a general function of the damper's relative displacement and relative velocity. Knowing the equivalent linear damping coefficient makes it possible to perform a frequency analysis of the suspension ride performance with any nonlinear damper. Some specific criteria are defined to design the desired form of equivalent linear damping coefficient which provides a high/small damping ratio at low-/high-frequency excitations, so the corresponding nonlinear damping force required to obtain improved ride performance of the suspension using a 1-degree-of-freedom quarter car model is also defined. A sensitivity analysis is then performed to provide a design guideline. The results show that the dependency of the equivalent damping coefficient either relative to the velocity of the suspension (velocity-dependent damper) or the relative displacement of the suspension (position-dependent damper) could provide a variable damping ratio leading to better vibration isolation over the excitation frequency. A noticeable ride dynamic performance can be reached over the entire range of the excitation frequency by designing a nonlinear damper such that its equivalent linear damping ratio becomes a desired function of both its relative displacement and relative velocity (position-velocity-dependent damper).
机译:本文提出了一种用于频率分析和非线性阻尼器设计的分析技术,进一步提高了在广泛的激励频率上的车辆悬架的乘坐动力学性能。使用能量平衡法(EBM),所提出的方法估计任何非线性无源阻尼器的等效线性阻尼系数,其力是阻尼器的相对位移和相对速度的一般函数。知道等效线性阻尼系数使得可以利用任何非线性阻尼器执行悬架骑行性能的频率分析。一些特定标准定义为设计所需的等效线性阻尼系数的所需形式,其在低/高频激发下提供高/小的阻尼比,因此需要使用1获得悬架的改进的乘坐性能所需的相应非线性阻尼力。 -Degree - 自由季度汽车模型也被定义。然后执行灵敏度分析以提供设计指南。结果表明,等效阻尼系数相对于悬架(速度相关阻尼器)的速度的依赖性或悬架(位置相关阻尼器)的相对位移可以提供可变阻尼比,导致更好的振动隔离励磁频率。通过设计非线性阻尼器,可以在励磁频率的整个范围内到达明显的骑行动态性能,使得其等效线性阻尼比成为其相对位移和相对速度(位置 - 速度相关阻尼器)的所需功能。

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