Compensation of Temperature Effect for LVDT Transducer

被引:8
|
作者
Petchmaneelumka, W. [1 ]
Rerkratn, A. [1 ]
Luangpol, A. [1 ]
Riewruja, V [1 ]
机构
[1] King Mongkuts Inst Technol Ladkrabang, Fac Engn, Bangkok 10520, Thailand
关键词
Temperature compensation; inductive transducer; LVDT; opamp; analog circuit design;
D O I
10.1142/S0218126618501827
中图分类号
TP3 [计算技术、计算机技术];
学科分类号
0812 ;
摘要
In this paper, a circuit technique to compensate the temperature effect in the output signal of the linear variable differential transformer (LVDT) is presented. The realization technique is based on the proposed feedback configuration to minimize the active component used in the circuit. The subtraction and sum schemes are provided instead of the error detector used in the traditional feedback loop. The feedback signal is obtained from two secondary winding signals of LVDT. The proposed feedback technique requires only the proportional control action to minimize the error caused by the variation of the ambient temperature. The sensitivity of LVDT is unaffected from the proposed compensation technique. The performances of the proposed technique are discussed in detail and confirmed by experimental implementation using the commercial devices. The maximum percentage error can be reduced from 6.52% of the LVDT output signal without temperature compensation to 0.05% of the proposed technique for the ambient temperature varied from 25 degrees C to 70 degrees C. The purpose of the proposed technique is emphasized in terms of high performance, simple configuration and low cost.
引用
收藏
页数:15
相关论文
共 50 条
  • [41] Effect of Multiple Clock Gene Ablations on the Circadian Period Length and Temperature Compensation in Mammalian Cells
    Tsuchiya, Yoshiki
    Umemura, Yasuhiro
    Minami, Yoichi
    Koike, Nobuya
    Hosokawa, Toshihiro
    Hara, Masayuki
    Ito, Hiroshi
    Inokawa, Hitoshi
    Yagita, Kazuhiro
    JOURNAL OF BIOLOGICAL RHYTHMS, 2016, 31 (01) : 48 - 56
  • [42] Compensation of Verdet Constant Temperature Dependence by Crystal Core Temperature Measurement
    Petricevic, Slobodan J.
    Mihailovic, Pedja M.
    SENSORS, 2016, 16 (10)
  • [43] Identification for Temperature Model and the Method for Temperature Compensation of Quartz Flexible Accelerometer
    Chen, Fubin
    Zhang, Kebei
    2015 IEEE ADVANCED INFORMATION TECHNOLOGY, ELECTRONIC AND AUTOMATION CONTROL CONFERENCE (IAEAC), 2015, : 841 - 845
  • [44] TEMPERATURE COMPENSATION AND TEMPERATURE ENTRAINMENT OF THE CHICK PINEAL CELL CIRCADIAN CLOCK
    BARRETT, RK
    TAKAHASHI, JS
    JOURNAL OF NEUROSCIENCE, 1995, 15 (08): : 5681 - 5692
  • [45] Ultrasonic micrometer position indicator with temperature compensation
    Pedrick, M
    Tittmann, BR
    2004 IEEE Ultrasonics Symposium, Vols 1-3, 2004, : 1199 - 1202
  • [46] Temperature compensation of NTC thermistors based anemometer
    Atanasijevic, Petar
    Mihailovic, Pedja
    SENSORS AND ACTUATORS A-PHYSICAL, 2019, 285 : 210 - 215
  • [47] Modeling temperature compensation in chemical and biological oscillators
    Ruoff, P
    Rensing, L
    Kommedal, R
    Mohsenzadeh, S
    CHRONOBIOLOGY INTERNATIONAL, 1997, 14 (05) : 499 - 510
  • [48] Temperature Compensation of Laser Triangular Displacement Sensor
    Li, Zhi
    Chen, Xiao
    Liu, Yuanzhi
    Tao, Wei
    Zhao, Hui
    2019 CHINESE AUTOMATION CONGRESS (CAC2019), 2019, : 4661 - 4667
  • [49] Research on bionic olfactory temperature compensation mechanism
    Cheng, Lei
    Chen, Hongyu
    Yu, Qiuyue
    Wu, Meng
    Liu, Qin
    Wang, Xin
    2017 2ND INTERNATIONAL CONFERENCE ON ADVANCED ROBOTICS AND MECHATRONICS (ICARM), 2017, : 316 - 321
  • [50] A research about the temperature compensation of hall sensor
    Wang Feng
    Mi Dong
    Xu Zhangsui
    ICEMI 2007: PROCEEDINGS OF 2007 8TH INTERNATIONAL CONFERENCE ON ELECTRONIC MEASUREMENT & INSTRUMENTS, VOL IV, 2007, : 131 - 134