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A New Real-Time Pinch Detection Algorithm Based on Model Reference Kalman Prediction and SRMS for Electric Adjustable Desk

机译:一种基于型号参考卡尔曼预测和电动可调节服务台SRMS的新型实时捏检测算法

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摘要

This paper presents a new algorithm based on model reference Kalman torque prediction algorithm combined with the sliding root mean square (SRMS). It is necessary to improve the accuracy and reliability of the pinch detection for avoiding collision with the height adjustable desk and accidents on users. Motors need to regulate their position and speed during the operation using different voltage by PWM (Pulse Width Modulation) to meet the requirement of position synchronization. It causes much noise and coupling information in the current sampling signal. Firstly, to analyze the working principle of an electric height adjustable desk control system, a system model is established with consideration of the DC (Direct Current) motor characteristics and the coupling of the system. Secondly, to precisely identify the load situation, a new model reference Kalman perdition method is proposed. The load torque signal is selected as a pinch state variable of the filter by comparing the current signal. Thirdly, to meet the need of the different loads of the electric table, the sliding root means square (SRMS) of the torque is proposed to be the criterion for threshold detection. Finally, to verify the effectiveness of the algorithm, the experiments are carried out in the actual system. Experimental results show that the algorithm proposed in this paper can detect the pinched state accurately under different load conditions.
机译:本文介绍了一种基于型号参考卡尔曼扭矩预测算法的新算法,与滑动根均线(SRMS)相结合。有必要提高夹切检测的准确性和可靠性,以避免与高度可调台和用户的事故发生碰撞。电机需要通过PWM(脉冲宽度调制)使用不同电压的操作期间调节其位置和速度,以满足位置同步的要求。它在当前采样信号中引起大量噪声和耦合信息。首先,为了分析电高可调桌面控制系统的工作原理,建立了一种通过考虑到DC(直流)电机特性和系统的耦合来建立系统模型。其次,为了精确识别负载情况,提出了一种新的模型参考卡尔曼迁移方法。通过比较电流信号,选择负载转矩信号作为滤波器的捏合状态变量。第三,为了满足电台式的不同载荷的需要,提出了扭矩的滑动根部平方(SRMS)是阈值检测的标准。最后,为了验证算法的有效性,实验在实际系统中进行。实验结果表明,本文提出的算法可以在不同的负载条件下精确地检测挤压状态。

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