汽车发动机磁流变悬架的结构设计与静态刚度优化

Zhi Rao, Lingfeng Tang, Yifang Shi
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引用次数: 0

摘要

鉴于被动悬架只能在特定范围内提供隔振效果,因此开发了一种挤压模式的磁流变悬架。在传统液压悬架的基础上,通过理论分析和数值模拟确保了结构参数的可靠性。使用 Simulink 建立了一个模型,将静态刚度与上挤压板的直径以及上下液室的高度联系起来,作为评估指标。然后利用该模型对磁流变悬浮液的静态刚度性能进行了优化。结果表明,在满足静态刚度要求的同时,优化后的磁流变悬浮液与之前的状态相比,静态刚度增加了 29.22%(约 57.71 N/mm),验证了该系统刚度优化的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Structural Design and Static Stiffness Optimization of Magnetorheological Suspension for Automotive Engine
In light of the limitation that passive suspension can only provide vibration isolation within a specific range, a magnetorheological suspension in extrusion mode was developed. The reliability of structural parameters was ensured through theoretical analysis and numerical simulation, building upon traditional hydraulic suspension. A model linking static stiffness to the diameter of the upper extrusion plate, as well as the heights of the upper and lower liquid chambers, was established using Simulink as an evaluation index. The static stiffness performance of the magnetorheological suspension was then optimized using this model. Results indicate that while meeting the static stiffness requirements, the optimized Magnetorheological Suspension demonstrated a 29.22% increase in static stiffness (approximately 57.71 N/mm) compared to its previous state, validating the effectiveness of stiffness optimization for this system.
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