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An adaptive fuzzy sliding mode control of magneto-rheological seat suspension with human body model

机译:人体模型的磁流变座椅悬架的自适应模糊滑模控制

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This article presents the control performances of a vehicle seat suspension system equipped with magneto-rheological dampers using a new adaptive fuzzy sliding mode controller. A magneto-rheological damper is designed by applying the Bingham model incorporating with the field-dependent rheological properties of magneto-rheological fluid. On the other hand, a seat suspension model is established by integrating with a 4-degree-of-freedom human body model. Then, the governing equations are then derived considering the vertical motion of the seat. Subsequently, an adaptive fuzzy controller is formulated by considering the acceleration of the seat. This controller is combined with the sliding mode controller to ensure the robustness against model uncertainty and external disturbances. The controller is then evaluated through experiment. It is demonstrated that the proposed seat suspension system realized by the proposed adaptive fuzzy sliding mode controller can provide very effective ride comfort performances by reducing vertical acceleration under regular bump, random signal, and sinusoidal excitations.
机译:本文介绍了使用新型自适应模糊滑模控制器的配备磁流变阻尼器的车辆座椅悬架系统的控制性能。磁流变阻尼器是通过应用Bingham模型并结合磁流变流体的场相关流变特性来设计的。另一方面,通过与四自由度人体模型集成来建立座椅悬架模型。然后,然后考虑座椅的垂直运动来导出控制方程。随后,通过考虑座椅的加速度来制定自适应模糊控制器。该控制器与滑模控制器结合使用,以确保针对模型不确定性和外部干扰的鲁棒性。然后通过实验评估控制器。结果表明,所提出的自适应模糊滑模控制器所实现的所提出的座椅悬架系统可以通过减少规则碰撞,随机信号和正弦激励下的垂直加速度来提供非常有效的乘坐舒适性。

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