Title :
Magnetic sensor employing piezoelectric ceramic/rare-earth iron alloy/high-permeability FeCuNbSiB composite
Author :
Li, Ping ; Chen, Lei ; Wen, Yumei ; Wang, Dong ; Huang, Xian
Author_Institution :
Key Lab. for Optoelectron. Technol. & Syst., Chongqing Univ., Chongqing, China
Abstract :
The magnetic sensor employing Terfenol-D/PZT/FeCuNbSiB (MPF) magnetoelectric (ME) laminate is investigated. The high permeability of FeCuNbSiB can concentrate the magnetic flux and enhance the effective dynamic strain coefficient in Terfenol-D, consequently resulting in the increase of the dynamic ME voltage coefficient (MEVC) (i.e., dVME/dHac under dc bias field) and the ME voltage sensitivity to Hdc (i.e., dVME/dHdc under ac bias field denoted as the static MEVC). The experimental results show that the Terfenol-D/FeCuNbSiB (MF) laminate exhibits a 1-2 times higher dynamic strain coefficient than that of a single Terfenol-D near resonance under a low Hdc. The dynamic MEVC for the MPF sensor achieves 2.185V/Oe. In addition, the maximum static MEVC achieves ~125mV/Oe under a resonant drive, which is 5 times as high as that of Terfenol-D/PZT (MP) sensor. Thus the MPF sensor can detect either dynamic or static magnetic fields. It is found that the thickness of the high permeability layer is critical to the composite sensor performances.
Keywords :
boron alloys; copper alloys; iron alloys; laminates; magnetic permeability; magnetic sensors; magnetoelectric effects; niobium alloys; piezoceramics; piezoelectric devices; silicon alloys; FeCuNbSiB; MPF sensor; PZT; Terfenol-D; high permeability composite; magnetic sensor; magnetoelectric laminate; magnetoelectric voltage coefficient; piezoelectric ceramic; rare earth iron alloy;
Conference_Titel :
Sensors, 2010 IEEE
Conference_Location :
Kona, HI
Print_ISBN :
978-1-4244-8170-5
Electronic_ISBN :
1930-0395
DOI :
10.1109/ICSENS.2010.5689909