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Theoretical analyses of roll- and pitch-coupled hydro-pneumatic strut suspensions

机译:横摇和纵摇耦合式油气悬架悬架的理论分析

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摘要

Vehicle suspension design and dynamics analysis play a key role in enhancement of automotive system performance. Despite extensive developments in actively-controlled suspensions, their commercial applications have been limited due to the associated high cost and weight. Alternative designs in either passive or semi-active suspensions are highly desirable to achieve competitive vehicle performance with relatively lower cost and greater reliability. This dissertation research proposes two hydro-pneumatic suspension strut designs, including a twin-gas-chamber strut, and systematically investigates various concepts in roll- and pitch-coupled suspensions employing hydraulic, pneumatic and hybrid fluidic interconnections between the wheel struts. The proposed strut designs, including single- and twin-gas-chamber struts, offer larger working area and thus lower operating pressure, and integrate damping valves. Nonlinear mathematical models of the strut forces due to various interconnected and unconnected suspension configurations are formulated incorporating fluid compressibility, floating piston dynamics, and variable symmetric and asymmetric damping valves, which clearly show the feedback damping effects of the interconnections between different wheel struts. The properties and dynamic responses of the proposed concepts in roll- and pitch-coupled suspension struts are evaluated in conjunction with in-plane and three-dimensional nonlinear vehicle models. The validity of the vehicle models is demonstrated by comparing their responses with the available measured data. The analyses of the proposed coupled suspensions are performed to derive their bounce-mode, anti-roll, anti-pitch and warp-mode properties, and vehicle dynamic responses to external excitations. These include road roughness, steering and braking, and crosswinds. The results suggest that the fluidically-coupled passive suspension could yield considerable benefits in enhancing vehicle ride and handing performance. Furthermore these offer superior design flexibility. The suspension struts offer a large number of coupling possibilities in the three-dimensions, some of which however would not be feasible, particularly for commercial vehicles where suspension loads may vary considerably. A generalized analytical model for a range of interconnected suspensions is thus developed, and a performance criterion is formulated to assess the feasibility of a particular interconnection in a highly efficient manner. The handling and directional responses of a three-dimensional vehicle model employing X-coupled hydro-pneumatic suspension are evaluated under split-o straight-line braking and braking-in-a-turn maneuvers. The results clearly show that the X-coupled suspension offers enhanced anti-roll and anti-pitch properties while retaining the soft vertical ride and warp properties. Fundamental pitch and vertical dynamics of a road vehicle are also considered to derive a set of essential design rules for suspension design and tuning for realizing desirable pitch performance
机译:车辆悬架设计和动力学分析在增强汽车系统性能方面起着关键作用。尽管主动控制的悬架取得了广泛的发展,但由于相关的高成本和重量,其商业应用受到了限制。为了获得具有相对较低的成本和更高的可靠性的具有竞争力的车辆性能,非常需要被动或半主动悬架的替代设计。本论文的研究提出了两种液压气动悬架撑杆设计,包括双气室撑杆,并系统地研究了在轮撑和变桨联接的悬架中采用轮撑之间的液压,气动和混合流体互连的各种概念。提议的支杆设计,包括单气室支杆和双气室支杆,提供了更大的工作区域,从而降低了工作压力,并集成了阻尼阀。结合流体可压缩性,浮动活塞动力学以及可变对称和非对称阻尼阀,对由于各种相互连接和不相互连接的悬架配置而产生的支杆力的非线性数学模型进行了公式化,清楚地显示了不同车轮支杆之间互连的反馈阻尼效果。结合平面内和三维非线性车辆模型,评估了所提出概念在侧倾和俯仰耦合悬架中的性能和动态响应。通过将其响应与可用的测量数据进行比较,可以证明车辆模型的有效性。对建议的悬架进行分析,以得出其弹跳模式,防侧倾,防俯仰和翘曲模式特性以及车辆对外部激励的动态响应。这些包括路面不平,转向和制动以及侧风。结果表明,流体耦合的被动悬架可以在提高车辆行驶和操纵性能方面产生可观的收益。此外,它们提供了卓越的设计灵活性。悬架支柱在三维上提供了大量的连接可能性,但是其中一些是不可行的,特别是对于悬架负载可能变化很大的商用车。因此,开发了一系列互连悬架的通用分析模型,并制定了性能标准,以高效方式评估特定互连的可行性。在分体式直线制动和转弯制动操纵下,评估了采用X耦合液压气动悬架的三维车辆模型的操纵性能和方向响应。结果清楚地表明,X耦合悬架提供了增强的抗侧倾和抗俯仰性能,同时保留了柔和的垂直行驶和翘曲性能。公路车辆的基本俯仰和垂直动力也被认为可以得出一套用于悬架设计和调整的基本设计规则,以实现理想的俯仰性能

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    Cao Dongpu;

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  • 年度 2008
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