钢板弹簧悬架等效垂直刚度的建模与仿真

IF 1.9 4区 工程技术 Q3 ENGINEERING, MECHANICAL
Junhong Zhang, Feiqi Long, Jiewei Lin, Xiaolong Zhu, Huwei Dai
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引用次数: 0

摘要

在汽车多体动力学(MBD)建模中,无论选择何种建模方法,钢板弹簧的刚度参数化都是一个不可避免的挑战。相反,通过调整比例因子,易于实现螺旋弹簧刚度的参数化。因此,基于虚拟位移理论,提出了一种将悬架刚度作为中间变量,通过悬架刚度进行LS刚度参数化的新方法。然后,将该方法应用于一辆前横板弹簧悬架和后纵抛物面板弹簧悬架的商用货车整车级建模中。通过固有频率试验和悬架刚度仿真验证了MBD模型的有效性。此外,还验证了车身的垂直加速度。结果表明,等效CS模型中车身垂直加速度的均方根(RMS)值略低于LS悬架模型。验证了该方法的适用性和能力,解决了MBD建模中LS刚度参数化的局限性。为有效模拟LS悬架在车辆平顺性和操控性方面的设计与优化奠定了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modeling and simulation of the equivalent vertical stiffness of leaf spring suspensions
In vehicle multi-body dynamics (MBD) modeling, the stiffness parameterization of leaf spring (LS) is an unavoidable challenge regardless of the selection of modeling methods. On the contrary, the parameterization of Coil Spring (CS) stiffness is easy to achieve by adjusting the scale factor. Therefore, a novel LS stiffness parameterization method by treating the suspension stiffness as an intermediate variable through a CS stiffness is proposed based on the virtual displacement theory. The proposed method is then implemented in the vehicle-level modeling of a commercial Van with front transverse leaf spring suspensions and rear longitudinal parabolic leaf spring suspensions. The MBD model is validated by natural frequency tests and suspension stiffness simulations. Furthermore, the vertical acceleration of the car body is also verified. Results show that the root mean square (RMS) values of body vertical acceleration in the equivalent CS model are just slightly lower than that in the LS suspensions. The applicability and capability of the proposed method are proven to address the limitation of LS stiffness parameterization in MBD modeling. It lays the groundwork for efficiently simulating the LS suspension in vehicle ride and handling design and optimization.
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来源期刊
Advances in Mechanical Engineering
Advances in Mechanical Engineering 工程技术-机械工程
CiteScore
3.60
自引率
4.80%
发文量
353
审稿时长
6-12 weeks
期刊介绍: Advances in Mechanical Engineering (AIME) is a JCR Ranked, peer-reviewed, open access journal which publishes a wide range of original research and review articles. The journal Editorial Board welcomes manuscripts in both fundamental and applied research areas, and encourages submissions which contribute novel and innovative insights to the field of mechanical engineering
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