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Roll- and pitch-plane coupled hydro-pneumatic suspension. Part I Feasibility analysis and suspension properties

机译:横滚和俯仰平面耦合的油气悬架。第一部分可行性分析和悬挂特性

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摘要

Passive fluidically coupled suspensions have been considered to offer a promising alternative solution to the challenging design of a vehicle suspension system. A theoretical foundation, however, has not been established for fluidically coupled suspension to facilitate its broad applications to various vehicles. The first part of this study investigates the fundamental issues related to feasibility and properties of the passive, full-vehicle interconnected, hydro-pneumatic suspension configurations using both analytical and simulation techniques. Layouts of various interconnected suspension configurations are illustrated based on two novel hydro-pneumatic suspension strut designs, both of which provide a compact design with a considerably large effective working area. A simplified measure, vehicle property index, is proposed to permit a preliminary evaluation of different interconnected suspension configurations using qualitative scaling of the bounce-, roll-, pitch- and warp-mode stiffness properties. Analytical formulations for the properties of unconnected and three selected X-coupled suspension configurations are derived, and simulation results are obtained to illustrate their relative stiffness and damping properties in the bounce, roll, pitch and warp modes. The superior design flexibility feature of the interconnected hydro-pneumatic suspension is also discussed through sensitivity analysis of a design parameter, namely the annular piston area of the strut. The results demonstrate that a full-vehicle interconnected hydro-pneumatic suspension could provide enhanced roll- and pitch-mode stiffness and damping, while retaining the soft bounce- and warp-mode properties. Such an interconnected suspension thus offers considerable potential in realising enhanced decoupling among the different suspension modes.
机译:被动流体耦合悬架已经被认为可以为具有挑战性的车辆悬架系统设计提供有希望的替代解决方案。然而,尚未建立用于流体耦合悬架以促进其广泛应用于各种车辆的理论基础。本研究的第一部分使用分析和模拟技术研究了与被动式,全车辆互连的,油气悬架配置的可行性和性能有关的基本问题。基于两个新颖的油气悬架设计,说明了各种相互连接的悬架结构的布局,两者均提供了紧凑的设计,并具有相当大的有效工作面积。提出了一种简化的测量方法,即车辆性能指数,可以使用弹跳,侧倾,俯仰和翘曲模式刚度特性的定性标定,对不同的互连悬架配置进行初步评估。推导了未连接的和三个选定的X耦合悬架配置的特性的解析公式,并获得了仿真结果,以说明它们在弹跳,滚动,俯仰和翘曲模式下的相对刚度和阻尼特性。通过对设计参数(即支杆的环形活塞区域)的敏感性分析,还讨论了互连的油气悬架的出色设计灵活性。结果表明,全车辆互连的油气悬架可以提供增强的侧倾和俯仰模式刚度和阻尼,同时保留柔和的弹跳和翘曲模式特性。因此,这种互连的悬架在实现不同悬架模式之间的增强的去耦方面具有巨大的潜力。

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