Improving Ride Comfort of a Soil Compactor based on the NSS Embedded into the Seat's Semiactive Suspension

Jinyu Jiang, Lujian Min, Yang Jing, Shiding Ding, Machun Yu, Wangxiang Jie
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Abstract

Three dynamic models (1-D, 2-D, and 3-D) of a soil compactor are established to research the vehicle's ride comfort via numerical simulation and experiment. Based on the efficiency of the semi-active control (SAC) of the Fuzzy-PID controller and the negative stiffness structure (NSS), a new suspension of the driver's seat equipped with the SAC and NSS is proposed to further improve the soil compactor's ride comfort under the various working conditions of the vehicle on the elastoplastic soil ground. The reduction of the root-mean-square seat acceleration (a_ws) in the time domain and the power-spectral-density seat acceleration (PSD) in the frequency domain is chosen as the objective function. The study indicates that the seat's acceleration response in the time domain with the 1-D, 2-D, and 3-D models of the soil compactor is similar. However, the a_ws and maximum PSD acceleration of the driver's seat with the 1-D model are higher than that of the 3-D model by 35.9% and 58.5%, while the acceleration response and PSD acceleration of the driver's seat with the simulation of the 3-D model are similar to the experiment. Therefore, the different dynamic models of the vehicle remarkably affect the investigation result. With the driver's seat suspension equipped with the SAC and NSS, the $a_{ws$ and maximum PSD acceleration of the driver's seat are strongly decreased by 80.1% and 87.6% compared to the seat's passive suspension without the SAC and NSS. Additionally, these values are also lower than that of oth the SAC and NSS under various simulation conditions. Consequently, the driver's seat suspension equipped with the SAC and NSS could be used to further improve the ride comfort of the soil compactor.
基于嵌入座椅半主动悬架的NSS改善土壤压实机的乘坐舒适性
建立了土壤压实机的一维、二维和三维动力学模型,通过数值模拟和实验研究了车辆的平顺性。基于模糊pid控制器半主动控制(SAC)和负刚度结构(NSS)的有效性,提出了一种配备SAC和负刚度结构的新型驾驶员座椅悬架,以进一步提高车辆在弹塑性土壤地面上各种工况下的乘坐舒适性。目标函数分别是时域的均方根座位加速度(a_ws)和频域的功率谱密度座位加速度(PSD)。研究表明,座椅在时域上的加速度响应与土压实机的1-D、2-D和3-D模型相似。但1-D模型下驾驶员座椅的a_ws和最大PSD加速度分别比3-D模型高35.9%和58.5%,而3-D模型下驾驶员座椅的加速度响应和PSD加速度与实验结果相似。因此,不同的车辆动力学模型对调查结果有显著影响。与未安装SAC和NSS的被动悬架相比,安装SAC和NSS的被动悬架的最大PSD加速度和$a_{ws$显著降低80.1%和87.6%。此外,在各种模拟条件下,这些值也低于SAC和NSS。因此,安装SAC和NSS的驾驶员座椅悬架可以进一步提高土壤压实机的乘坐舒适性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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