TY - JOUR
T1 - Improving sensitivity of an inductive pulse sensor for detection of metallic wear debris in lubricants using parallel LC resonance method
AU - Du, Li
AU - Zhu, Xiaoliang
AU - Han, Yu
AU - Zhao, Liang
AU - Zhe, Jiang
PY - 2013/7
Y1 - 2013/7
N2 - Detection of small metallic wear debris is critical to identify abnormal wear conditions for prognosis of pending machinery failure. In this paper we applied an inductance-capacitance (LC) resonance method to an inductive pulse debris sensor to increase the sensitivity. By adding an external capacitor to the sensing coil of the sensor, a parallel LC resonance circuit is formed that has a unique resonant frequency. At an excitation frequency close to the resonant frequency, impedance change (and thus change in voltage output) of the LC circuit caused by the passage of a debris particle is amplified due to sharp change in impedance at the resonant peak; thus signal-to-noise ratio and sensitivity are significantly improved. Using an optimized measurement circuit, iron particles ranging from 32 to 96 m and copper particles ranging from 75 to 172 m were tested. Results showed that the parallel LC resonance method is capable of detecting a 20 m iron particle and a 55 m copper particle while detection limits for the non-resonance method are 45 and 125 m, respectively. In contrast to the non-resonant method, the sensitivity of the resonance method has been significantly improved.
AB - Detection of small metallic wear debris is critical to identify abnormal wear conditions for prognosis of pending machinery failure. In this paper we applied an inductance-capacitance (LC) resonance method to an inductive pulse debris sensor to increase the sensitivity. By adding an external capacitor to the sensing coil of the sensor, a parallel LC resonance circuit is formed that has a unique resonant frequency. At an excitation frequency close to the resonant frequency, impedance change (and thus change in voltage output) of the LC circuit caused by the passage of a debris particle is amplified due to sharp change in impedance at the resonant peak; thus signal-to-noise ratio and sensitivity are significantly improved. Using an optimized measurement circuit, iron particles ranging from 32 to 96 m and copper particles ranging from 75 to 172 m were tested. Results showed that the parallel LC resonance method is capable of detecting a 20 m iron particle and a 55 m copper particle while detection limits for the non-resonance method are 45 and 125 m, respectively. In contrast to the non-resonant method, the sensitivity of the resonance method has been significantly improved.
KW - inductive pulse sensor
KW - machine health monitoring
KW - oil debris detection
KW - sensitivity
UR - https://www.scopus.com/pages/publications/84879983630
U2 - 10.1088/0957-0233/24/7/075106
DO - 10.1088/0957-0233/24/7/075106
M3 - 文章
AN - SCOPUS:84879983630
SN - 0957-0233
VL - 24
JO - Measurement Science and Technology
JF - Measurement Science and Technology
IS - 7
M1 - 075106
ER -