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首页> 外文期刊>Progress in Artificial Intelligence >A Concentric Design of a Bypass Magnetorheological Fluid Damper with a Serpentine Flux Valve
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A Concentric Design of a Bypass Magnetorheological Fluid Damper with a Serpentine Flux Valve

机译:具有蛇形通量阀的旁路磁流变流体阻尼器的同心设计

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摘要

This work presents a new concentric design structure of a bypass magnetorheological (MR) damper with a serpentine flux valve type. In this design, the serpentine valve is installed not in the middle of the piston but on the bypass channel of the damper. However, to make it less bulky, the location of the valve installation is chosen to be in line with the cylinder axis, which is different from the common configuration of the bypass damper. With the proposed design concept, the performance flexibility of the bypass configuration and the compactness of the piston valve configuration can be accomplished. In this study, these benefits were demonstrated by firstly deriving an analytical model of the proposed MR damper focusing on the bypass concentric valve structure, which is vital in determining the damping force characteristics. The prototype of MR damper was also fabricated and characterized using the dynamic test machine. The simulation results show that the damping force could be adjusted from 20 N in the off-state to around 600 N in the on-state with 0.3 A of excitation current. In the experiments, during low piston velocity measurement, the on-state results from the simulation were generally in good agreement with the experimental results. However, with the increase in piston velocity, the deviation between the simulation and the experiment gets higher. The deviations are most probably due to seal frictions that were not accounted for in the model. The seal friction is probably dominant as the seals in the prototype need to be prepared for handling higher fluid pressure. As a result, the frictions are quite prevalent and significantly affect the measured off-state damping forces as well, where it was recorded ten times higher than the predicted values from the model. Nevertheless, although there were deviations, the dynamic range of the concentric bypass structure is still 1.5 times higher than the conventional structure and the new structure can be potentially explored more to achieve an improved MR damper design.
机译:该工作介绍了具有蛇形通量阀型的旁路磁流变(MR)阻尼器的新同心设计结构。在这种设计中,蛇形阀未安装在活塞的中间,但在阻尼器的旁路通道上。然而,为了使其更宽松,选择阀门安装的位置与汽缸轴线符合,这与旁路阻尼器的公共配置不同。利用所提出的设计理念,可以实现旁路配置的性能灵活性和活塞阀配置的紧凑性。在这项研究中,通过首先导出所提出的MR阻尼器的分析模型专注于旁路同心瓣膜结构来证明这些益处,这对于确定阻尼力特性至关重要。 MR Damper的原型也使用动态测试机制造和特征。仿真结果表明,阻尼力可以在截止状态下在截止状态下从20n调节到600n,其激励电流为0.3A。在实验中,在低活塞速度测量期间,仿真的导通状态通常与实验结果吻合良好。然而,随着活塞速度的增加,模拟与实验之间的偏差变得更高。偏差最可能是由于模型中未占用的密封摩擦。由于需要制备原型中的密封件来处理更高的流体压力,所以密封摩擦可能是显着的。结果,摩擦方面非常普遍,并且显着影响测量的断开状态阻尼力,在那里记录比来自模型的预测值高十倍。然而,尽管存在偏差,但同心旁路结构的动态范围仍然比传统结构高1.5倍,并且可以更能探索新的结构以实现改进的MR阻尼器设计。

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