Design optimization and experimental evaluation of a large capacity magnetorheological damper with annular and radial fluid gaps.

IF 2.4 3区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY Journal of Intelligent Material Systems and Structures Pub Date : 2023-08-01 DOI:10.1177/1045389X221151075
Moustafa Abdalaziz, Ramin Sedaghati, Hossein Vatandoost
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Abstract

This paper presents an optimal design of a large-capacity Magnetorheological (MR) damper suitable for off-road vehicle applications. The damper includes an MR fluid bypass valve with both annular and radial gaps to generate a large damping force and dynamic range. An analytical model of the proposed damper is formulated based on the Bingham plastic model of MR fluids. To establish a relationship between the applied current and magnetic flux density in the MR fluid active regions, an analytical magnetic circuit is formulated and further compared with a magnetic finite element model. The MR valve geometrical parameters are subsequently optimized to maximize the damper dynamic range under specific volume and magnetic field constraints. The optimized MR valve can theoretically generate off-state and on-state damping forces of 1.1 and 7.41 kN, respectively at 12.5 mm/s damper piston velocity. The proposed damper has been also designed to allow a large piston stroke of 180 mm. The proof-of-concept of the optimally designed MR damper was subsequently fabricated and experimentally characterized to investigate its performance and validate the models. The results show that the proposed MR damper is able to provide large damping forces with a high dynamic range under different excitation conditions.

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带环空和径向液隙的大容量磁流变阻尼器设计优化及实验评价。
提出了一种适用于越野车辆的大容量磁流变阻尼器的优化设计方法。阻尼器包括一个磁流变液旁通阀,具有环空和径向间隙,以产生大的阻尼力和动态范围。基于MR流体的Bingham塑性模型,建立了该阻尼器的解析模型。为了建立磁流变液活动区的外加电流与磁通密度之间的关系,建立了解析磁路,并与磁有限元模型进行了比较。随后对磁流变阀几何参数进行优化,使阻尼器在特定体积和磁场约束下的动态范围最大化。优化后的磁流变阀在阻尼活塞速度为12.5 mm/s时,理论上能分别产生1.1 kN和7.41 kN的非稳态和稳态阻尼力。所提出的阻尼器也被设计为允许180毫米的大活塞行程。随后制作了优化设计的MR阻尼器的概念验证,并进行了实验表征,以研究其性能并验证模型。结果表明,在不同的激励条件下,所提出的磁流变阻尼器能够提供大的阻尼力和高的动态范围。
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来源期刊
Journal of Intelligent Material Systems and Structures
Journal of Intelligent Material Systems and Structures 工程技术-材料科学:综合
CiteScore
5.40
自引率
11.10%
发文量
126
审稿时长
4.7 months
期刊介绍: The Journal of Intelligent Materials Systems and Structures is an international peer-reviewed journal that publishes the highest quality original research reporting the results of experimental or theoretical work on any aspect of intelligent materials systems and/or structures research also called smart structure, smart materials, active materials, adaptive structures and adaptive materials.
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