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Modelling, validation and parameter sensitivity of regenerative hydraulic-electric shock absorber

机译:再生式液压-电动减震器建模、验证及参数灵敏度

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摘要

Purpose Suspension is a significantly important component for automotive and railway vehicles. Regenerative hydraulic-electric shock absorbers (RHSA) have been proposed for the purpose of attenuating vibration of vehicle suspension, and also recover kinetic energy originated from vehicle vibration that is conventionally dissipated by hydraulic dampers. To advance the technology, the paper aims to present an RHSA system for heavy-duty and railway vehicles and create a dynamic modelling to discuss on the development process of RHSA model. Design/methodology/approach First, the development of RHSA dynamic model can be resolved into three stage models (an ideal one, a second one with an added accumulator and a third one that considers both accumulator and system losses) to comprehensively evaluate the RHSA's characterisation. Second, a prototype is fabricated for testing and the results meet desired agreements between simulation and measurement. Finally, the study of key parameters is carried out to investigate the influences of hydraulic-cylinder size, hydraulic-motor displacement and accumulator pre-charged pressure on the RHSA system. Findings The findings of sensitivity analysis indicate that the component design can satisfy the damping characteristics and power performance required for heavy-duty vehicle, freight wagon and typical passenger train. The results also show that reducing the losses is highly beneficial for saving suspension energy, improving system reliability and increasing power-conversion efficiency. Originality/value The paper presents a more detailed method for the development and analysis of a RHSA. Compared with the typical shock absorbers, RHSA can also recover the vibration energy dissipated by suspension.
机译:目的 悬架是汽车和铁路车辆的重要部件。再生液压电动减震器(RHSA)被提出来用于衰减车辆悬架的振动,并回收来自车辆振动的动能,这些动能通常由液压阻尼器消散。为了推进该技术的发展,本文旨在介绍一种用于重型车辆和铁路车辆的RHSA系统,并创建一个动态模型来讨论RHSA模型的开发过程。设计/方法/途径 首先,RHSA动态模型的开发可以分解为三个阶段模型(理想模型、添加累加器的第二阶段模型和同时考虑累加器和系统损耗的第三阶段模型),以综合评估RHSA的特征。其次,制造原型进行测试,结果符合仿真和测量之间的预期一致性。最后,通过关键参数研究,研究了液压缸尺寸、液压马达排量和蓄能器预充压力对RHSA系统的影响。灵敏度分析结果表明,该部件设计能够满足重型车辆、货车和典型客运列车所需的阻尼特性和动力性能。研究结果还表明,降低损耗对于节省悬架能量、提高系统可靠性和提高功率转换效率非常有益。原创性/价值 本文提出了一种更详细的RHSA开发和分析方法。与典型的减震器相比,RHSA还可以回收悬架耗散的振动能量。

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