High Sensitivity Differential Giant Magnetoresistance (GMR) Based Sensor for Non-Contacting DC/AC Current Measurement

被引:39
作者
Musuroi, Cristian [1 ]
Oproiu, Mihai [1 ]
Volmer, Marius [1 ]
Firastrau, Ioana [1 ]
机构
[1] Transilvania Univ Brasov, Dept Elect Engn & Appl Phys, 29 Blvd Eroilor, Brasov 500036, Romania
关键词
current sensors; GMR effect; spin-valve sensor; micromagnetic simulations; Bias magnetic field; SUPERPARAMAGNETIC BEADS; MAGNETIZATION; MICROBEADS; DEPENDENCE; CAPTURE; LAB;
D O I
10.3390/s20010323
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
This paper presents the design and implementation of a high sensitivity giant magnetoresistance (GMR) based current sensor with a broad range of applications. The novelty of our approach consists in using a double differential measurement system, based on commercial GMR sensors, with an adjustable biasing system used to linearize the field response of the system. The work aims to act as a fully-operational proof of concept application, with an emphasis on the mode of operation and methods to improve the sensitivity and linearity of the measurement system. The implemented system has a broad current measurement range from as low as 75 mA in DC and 150 mA in AC up to 4 A by using a single setup. The sensor system is also very low power, consuming only 6.4 mW. Due to the way the sensors are polarized and positioned above the U-shaped conductive band through which the current to be measured is flowing, the differential setup offers a sensitivity of about between 0.0272 to 0.0307 V/A (signal from sensors with no amplifications), a high immunity to external magnetic fields, low hysteresis effects of 40 mA, and a temperature drift of the offset of about -2.59 x 10(-4) A/degrees C. The system provides a high flexibility in designing applications where local fields with very low amplitudes must be detected. This setup can be redesigned for a wide range of applications, thus allowing further specific optimizations, which would provide an even greater accuracy and a significantly extended operation range.
引用
收藏
页数:17
相关论文
共 29 条
[1]  
[Anonymous], MAGNETIC SENSORS DEV
[2]   GMR MATERIALS FOR LOW-FIELD APPLICATIONS [J].
DAUGHTON, JM ;
CHEN, YJ .
IEEE TRANSACTIONS ON MAGNETICS, 1993, 29 (06) :2705-2710
[3]  
Donahue M. J., 1999, Technical Report, P83, DOI 10.6028/NIST.IR.6376
[4]   Lab-on-a-Chip Magneto-Immunoassays: How to Ensure Contact between Superparamagnetic Beads and the Sensor Surface [J].
Eickenberg, Bernhard ;
Meyer, Judith ;
Helmich, Lars ;
Kappe, Daniel ;
Auge, Alexander ;
Weddemann, Alexander ;
Wittbracht, Frank ;
Huetten, Andreas .
BIOSENSORS-BASEL, 2013, 3 (03) :327-340
[5]  
Elmatboly O., 2005, IECON 2005. Thirty-First Annual Conference of the IEEE Industrial Electronics Society (IEEE Cat. No.05CH37699)
[6]   Localized detection of reversal nucleation generated by high moment magnetic nanoparticles using a large-area magnetic sensor [J].
Feng, Yinglong ;
Liu, Jinming ;
Klein, Todd ;
Wu, Kai ;
Wang, Jian-Ping .
JOURNAL OF APPLIED PHYSICS, 2017, 122 (12)
[7]   Electronic Energy Meter Based on a Tunnel Magnetoresistive Effect (TMR) Current Sensor [J].
Garcia Vidal, Enrique ;
Ramirez Munoz, Diego ;
Ravelo Arias, Sergio Ivan ;
Sanchez Moreno, Jaime ;
Cardoso, Susana ;
Ferreira, Ricardo ;
Freitas, Paulo .
MATERIALS, 2017, 10 (10)
[8]   THEORY OF THE TEMPERATURE-DEPENDENT GIANT MAGNETORESISTANCE IN MAGNETIC MULTILAYERS [J].
HASEGAWA, H .
PHYSICAL REVIEW B, 1993, 47 (22) :15080-15085
[9]  
Hudoffsky B., 2011, Proceedings of the 2011 14th European Conference on Power Electronics and Applications, P1
[10]  
Jamet S, 2015, WOODH PUB SER ELECT, P783, DOI 10.1016/B978-0-08-100164-6.00025-4