A Sensitivity-Enhanced Fiber Grating Voltage Sensor Based on Giant Magnetostrictive Material Applied for Voltage Detection

Author(s):  
Shuchao Wang ◽  
Wenlong Yang ◽  
Quan Zhou ◽  
Weigen Chen ◽  
Yanling Xiong ◽  
...  
Sensors ◽  
2019 ◽  
Vol 19 (8) ◽  
pp. 1755 ◽  
Author(s):  
Shuchao Wang ◽  
Fu Wan ◽  
Hong Zhao ◽  
Weigen Chen ◽  
Weichao Zhang ◽  
...  

Currently, in the modern power industry, it is still a great challenge to achieve high sensitivity and uninterrupted-online measurement of large current on the high voltage gridlines. At present, the fiber grating current sensors based on giant magnetostrictive material used in the modern power industry to achieve uninterrupted-online measurement of large currents on high voltage grid lines is a better method, but the sensitivity of this current sensor is relatively low, therefore, it is key to improve the sensitivity of this current sensor. Here we show a sensitivity-enhanced fiber grating current sensor based on giant magnetostrictive material (in the following, simply referred to as the sensitivity-enhanced fiber grating current sensor) that is able to achieve high sensitivity and uninterrupted-online measurement of large currents by means of pressurizing the giant magnetostrictive material. Sampling the power frequency sinusoidal alternating current signals with the amplitudes of 107, 157 and 262 A respectively, based on realistic factors, for the sensitivity-enhanced current sensor, the sensitivities, compared with that of the traditional fiber grating current sensor based on giant magnetostrictive material (in the following, simply referred to as the traditional fiber grating current sensor), were respectively enhanced by 268.96%, 135.72% and 71.57%. Thus the sensitivity-enhanced fiber grating current sensor allows us to solve the issue of high sensitivity and uninterrupted-online measurement of large currents that have been plaguing the power industry in a very simple and low-cost way.


1993 ◽  
Vol 59 (563) ◽  
pp. 2112-2115
Author(s):  
Takahiro Urai ◽  
Takahiro Sugiyama ◽  
Takashi Nakamura ◽  
Katsuhisa Jinbo

1992 ◽  
Vol 16 (2) ◽  
pp. 389-392 ◽  
Author(s):  
H. Wakiwaka ◽  
M. Nagumo ◽  
M. Iio ◽  
H. Yamada ◽  
M. Igarashi ◽  
...  

2013 ◽  
Vol 650 ◽  
pp. 513-517
Author(s):  
Lei Yang ◽  
Feng Cui ◽  
Wu Liu ◽  
Xiao Sheng Wu ◽  
Wei Ping Zhang ◽  
...  

The structure and operation principle of a novel solid MEMS gyroscope with bulk giant magnetostrictive material (GMM) resonator are presented. A finite element method (FEM) for modal analysis of the GMM resonator is employed in which the fundamental magnetoelastic governing equations of the GMM are solved numerically using weak form equations of COMSOL Multiphysics. For a bulk GMM with size of 4×4×4 mm3, it is found that the third order vibration mode with frequency of 182 kHz meets working vibratory mode of the gyro sensor, which is verified by harmonic response analysis. Compared with analogy method which simulates the GMM as piezoceramics, this method is more practically reflect the operation state of GMM resonator of the microgyro due to consideration of Maxwell force in the weak form equations. This paper provides important basis for further full magnetic electromechanical coupling analysis of the microgyroscope.


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