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A novel torque sensor based on the angle of magnetization vector

机译:基于磁化矢量角度的新型扭矩传感器

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摘要

Torque is an important parameter of a mechanical power system, which reflects transmission efficiency, transmission reliability, and operating conditions of equipment. Torque monitoring is very important for real-time control and fault diagnosis of mechanical equipment. A torque measurement method based on the theory of magnetic effect is proposed for multipoint torque monitoring in shafting. A model of the deflection angle of the magnetization vector and torque is established based on the theory of magnetic equivalent. A non-contact signal extraction circuit based on hall sensor is designed, a torque loading experimental device is set up, and the torque calibration experiment is completed. The experimental results show that the sensitivity of the torque measurement system is 17.7 mV/Nm, and the maximum nonlinear error is 0.77% full scale. The deflection angle of the magnetization vector has a good linear relation with the torque, which can be measured indirectly by the deflection angle. This method has the advantages of a simple device, strong anti-interference ability, and non-contact measurement. Because it is not necessary to do special treatment to the elastic shaft, it is convenient to form a non-contact torque sensing node, which can realize real-time monitoring of multipoint torque of shafting.
机译:扭矩是机械电力系统的重要参数,其反映了设备的传输效率,传输可靠性和操作条件。扭矩监测对于机械设备的实时控制和故障诊断非常重要。提出了一种基于磁效理论的扭矩测量方法,用于在轴向上进行多点扭矩监测。基于磁等效物理论建立磁化矢量和扭矩的偏转角的模型。设计了基于霍尔传感器的非接触式信号提取电路,建立了扭矩负载实验装置,完成了扭矩校准实验。实验结果表明,扭矩测量系统的灵敏度为17.7 mV / nm,最大非线性误差为0.77%。磁化矢量的偏转角与扭矩具有良好的线性关系,该扭矩可以通过偏转角间接测量。该方法具有简单的装置,强烈的抗干扰能力和非接触式测量的优点。由于没有必要对弹性轴进行特殊处理,因此可以方便地形成非接触扭矩传感节点,这可以实现对轴系的多点扭矩的实时监测。

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