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Modelling, testing and analysis of a regenerative hydraulic shock absorber system

机译:再生液压减震器系统的建模,测试和分析

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摘要

Recoverable energy in vehicle suspension systems has attracted intensive attention in recent years for the improvement of vibration suppression performance and the reduction of energy dissipation. Various design concepts and structures of regenerative suspensions have been presented and investigated to recover the energy of linear motion and vibration between the vehicle body and chassis from road disturbances. These studies concentrate on the energy conversion from kinetic energy to electricity. Although a large number of concepts and models have been proposed and evaluated to regenerate power for reuse, the previous simulation works have used significantly simplified models without considering parameter uncertainties and system losses. In addition, experimental works are too simple to support for modelling optimisation.udTo advance the technology, a regenerative hydraulic shock absorber is investigated rigorously by examining the system at various developing stages including modelling all hydraulic, mechanical, and electromagnetic processes, simulating its behaviours, identifying its uncertain parameters/variables, fabricating a prototype of a commonly used shock absorber, testing its desirable performance and evaluating its on-road usability, which has given an accurate understanding of dynamic behaviours and power regeneration of a regenerative hydraulic shock absorber system.udBased on the configuration of the prototype, a comprehensive mathematical model is developed for the regenerative hydraulic shock absorber system. The various losses and nonlinearity have been taken into account in modelling hydraulic, mechanical, and electromagnetic processes, which allow more detailed influences and agreeable predictions with the experimental work to be obtained. The introduction of the gas-charged hydraulic accumulator into the system has been explored in both modelling and testing to provide power smoothing in an attempt to give a more stable recoverable power.udModel parameter identifications and refinements based on online data are systemically investigated. It has found that the pressures, rotation speeds and electrical outputs, which are readily available in the system, are sufficient to determine and refine uncertain model parameters such as the voltage constant coefficient, torque constant coefficient, generator internal resistance and rotational friction torque using a common least square method.udThe developed experimental rig and measurement systems for the study of regenerative hydraulic shock absorbers are designed and built. The variations in motor pressure and shaft speed under different excitations are evaluated, and also voltage output and recoverable power at different electrical loads are investigated. Additionally, the experimental work is not only used to validate the predicted results comprehensively, but also to offer a practical evaluation method for the system under various operating conditions. In particular, the system using piston-rod dimensions of 50-30mm achieves recoverable power of 260W with an efficiency of around 40% under sinusoidal excitation of 1Hz frequency and 25mm amplitude. Additionally, control strategies and their realisation on a general purpose PC computer are developed based on constant voltage, current and resistance schemes to carry out the investigation of the system performances, which allows it to be fully evaluated upon the compromise between the damping behaviour and power regeneration performance for different road conditions.udFurthermore, the simulation of the entire system and parameter computations are all realised on the Matlab platform, which provides sufficient flexibility to take into account more influence factors for accurate and detailed analysis and thus can be an effective mathematical tool for further development research in this direction such as the optimisation of the structures, control strategies and system integrations.
机译:近年来,车辆悬架系统中的可回收能量因提高振动抑制性​​能和减少能量耗散而引起了广泛关注。已经提出并研究了再生悬架的各种设计概念和结构,以从道路干扰中恢复车身与底盘之间的线性运动和振动能量。这些研究集中于从动能到电能的能量转换。尽管已经提出并评估了大量概念和模型以再生功率以供重用,但先前的仿真工作已使用大大简化的模型,而未考虑参数不确定性和系统损耗。此外,实验工作太简单,无法支持建模优化。 ud为了推进这项技术,通过在各个开发阶段检查系统,包括对所有液压,机械和电磁过程进行建模,并模拟其行为,对再生式液压减震器进行了严格的研究。 ,确定其不确定的参数/变量,制造常用减震器的原型,测试其理想的性能并评估其在道路上的可用性,从而对再生液压减震器系统的动态行为和功率再生有了准确的了解。 ud基于原型的配置,为再生液压减震器系统开发了一个综合的数学模型。在对液压,机械和电磁过程进行建模时,已考虑了各种损失和非线性,从而可以更详细地影响实验结果,并获得与实验工作一致的预测。在建模和测试中都对将充气式液压蓄能器引入系统进行了探索,以提供功率平滑功能,以期提供更稳定的可恢复功率。 ud基于在线数据的模型参数识别和改进已得到系统地研究。已经发现,系统中容易获得的压力,转速和电输出足以确定和改进不确定的模型参数,例如电压常数系数,转矩常数系数,发电机内阻和旋转摩擦转矩。设计通用的最小二乘方法。 ud设计并建造了用于研究再生液压减震器的试验台架和测量系统。评估了在不同激励下电动机压力和轴转速的变化,并研究了在不同电负载下的电压输出和可恢复功率。此外,实验工作不仅可以用来全面验证预测结果,而且还可以为系统在各种运行条件下提供一种实用的评估方法。特别是,使用尺寸为50-30mm的活塞杆的系统在1Hz频率和25mm振幅的正弦激励下可获得260W的可恢复功率,效率约为40%。此外,基于恒定电压,电流和电阻方案开发了控制策略及其在通用PC计算机上的实现,以进行系统性能的研究,从而可以在阻尼行为和功率之间的折衷情况下对其进行全面评估。 ud此外,整个系统的仿真和参数计算都在Matlab平台上实现,这提供了足够的灵活性,可以考虑更多影响因素以进行准确和详细的分析,因此可以成为有效的数学模型。该工具可用于此方向的进一步开发研究,例如结构优化,控制策略和系统集成。

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    Wang Ruichen;

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  • 年度 100
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