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Modeling and optimization for pneumatically pitch-interconnected suspensions of a vehicle

机译:用于车辆气动互联悬架的建模与优化

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摘要

A novel analysis method of the mode and transmissibility properties is presented for the vehicle equipped with a pneumatically interconnected suspension (PIS) system. A pitch-plane 4-degree-of-freedom (4-DOF) half-car model with the front and rear air springs connected through a pipe is derived by integrating the pneumatic strut forces into the vehicle mechanical system. The air flow in the pipe is modeled through a linear differential equation based on Newton's second law in which the air mass inertial effects, the frictional and local pressure drops are considered. The vibration equation of the mechanical-pneumatic coupled system is obtained in frequency domain to describe the relationships between the vehicle motions with the air springs' internal pressures and the rough-road excitations. Based on the system vibration equation, both the vehicle free vibration modes and frequency response functions (FRFs) are compared between the half-car with a PIS and that with a standalone air suspension. The results show that the PIS can suppress the vehicle pitch vibration without affecting its bounce properties, and an additional pneumato-dominated vibration mode is observed in a low frequency range. The effects of pipe length, diameter and the local loss ratio factor on the vehicle pitch transmissibility properties are investigated. The design of experiments (DOE) approach is further applied to obtain an optimal design of the pipe to achieve the desired pitch vibration responses, i.e. the resonance frequency and amplitude and the minimal vibration level, under road random inputs. It shows that the vehicle pitch performance can be conveniently enhanced by designing a pipe with suitable length and diameter of the PIS. (C) 2018 Elsevier Ltd. All rights reserved.
机译:为配备有气动互连的悬架(PIS)系统的车辆提供了一种新的分析方法和透射性的方法。通过将气动支柱力集成到车辆机械系统中,通过将气动支柱力集成到车辆机械系统中来源的俯仰平面4-自由度(4-DOF)半汽车模型。管道中的空气流通过基于牛顿第二律的线性微分方程建模,其中考虑了空气质量惯性效应,摩擦和局部压降。在频域中获得机械气动耦合系统的振动方程,以描述具有气簧的内部压力和粗糙道路激发的车辆运动之间的关系。基于系统振动方程,将车辆自由振动模式和频率响应函数(FRFS)与PIS的半轿厢相比,具有独立的空气悬架。结果表明,PIS可以抑制车辆间距振动而不影响其反弹特性,并且在低频范围内观察到额外的血红蛋解振动模式。研究了管道长度,直径和局部损失比因子对车辆间距传染性特性的影响。实验(DOE)方法的设计进一步应用于获得管道的最佳设计,以实现所需的间距振动响应,即谐振频率和幅度和最小振动水平,在道路随机输入下。它表明,通过设计具有合适长度和PI的直径的管道,可以方便地增强车辆俯仰性能。 (c)2018年elestvier有限公司保留所有权利。

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