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Integrated active and semi-active control for seat suspension of a heavy duty vehicle

机译:重型车辆座椅悬架的集成式主动和半主动控制

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>In this article, an integrated active and semi-active seat suspension for heavy duty vehicles is proposed, and its prototype is bui an integrated control algorithm applied measurable variables (suspension relative displacement and seat acceleration) is designed for the proposed seat prototype. In this seat prototype, an active actuator with low maximum force output (70 N), which is insufficient for an active seat suspension to control the resonance vibration, is applied together with a rotary magnetorheological damper. The magnetorheological damper can suppress the high vibration energy in resonance frequency, and then a small active force can further improve the seat suspension performance greatly. The suspension’s dynamic property is tested with a MTS system, and its model is identified based on the testing data. A modified on–off controller is applied for the rotary magnetorheological damper. AHcontroller with the compensation of a disturbance observer is used for the active actuator. Considering the energy saving, the control strategy is designed as that only when the magnetorheological damper is in the off state (0 A current), the active actuator will have active force output, or the active actuator is off. Both simulation and experiment are implemented to verify the proposed seat suspension and controller. In the sinusoidal excitations experiment, the acceleration transmissibility of integrated control seat has lowest value in resonance frequency and frequencies above the resonance, when compared with power on (0.7 A current), power off (0 A current) and semi-active control seat. In the random vibration experiment, the root mean square acceleration of integrated control seat suspension has 47.7%, 33.1% and 26.5% reductions when compared with above-mentioned three kinds of seat suspension. The power spectral density comparison indicates that the integrated seat suspension will have good performance in practical application. The integrated active and semi-active seat suspension can fill energy consumption gap between active and semi-active control seat suspension.
机译: >在本文中,提出了一种用于重型车辆的主动和半主动集成式座椅悬架,并制造了其原型。针对拟议的座椅原型设计了一种集成控制算法,该算法应用了可测量的变量(悬架相对位移和座椅加速度)。在该座椅原型中,与旋转磁流变阻尼器一起使用了主动力致动器,该主动致动器具有较低的最大力输出(70 N),不足以使主动座椅悬架控制共振。磁流变阻尼器可以抑制共振频率中的高振动能量,然后较小的作用力就可以进一步大大改善座椅悬架性能。悬架的动态特性已通过MTS系统进行了测试,并根据测试数据确定了其模型。旋转磁流变阻尼器采用了改进的开关控制器。 A H 具有干扰观测器补偿的控制器用于主动执行器。考虑到节能,控制策略设计为仅在磁流变阻尼器处于关闭状态(电流为0 A)时,主动执行器才会输出主动力,或者主动执行器处于关闭状态。通过仿真和实验来验证所提出的座椅悬架和控制器。在正弦激励实验中,与打开电源(0.7?A电流),关闭电源(0?A电流)和半主动控制座相比,集成控制座的加速度传递率在共振频率和高于共振频率处具有最低的值。在随机振动实验中,与上述三种座椅悬架相比,集成控制座椅悬架的均方根加速度分别降低了47.7%,33.1%和26.5%。功率谱密度比较表明,集成式座椅悬架在实际应用中将具有良好的性能。集成的主动和半主动座椅悬架可以填补主动和半主动控制座椅悬架之间的能耗差距。

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