A LTCC low-loss inductive proximity sensor for harsh environments

被引:25
|
作者
Bartsch, Heike [1 ]
Geiling, Thomas [1 ]
Mueller, Jens [1 ]
机构
[1] Ilmenau Univ Technol, Dept Elect Technol, D-98693 Ilmenau, Germany
关键词
Proximity sensor; Magnetic sensor; LTCC; Eddy current; Ceramic multilayer; Embossing; Photolithographic thick film processing;
D O I
10.1016/j.sna.2011.12.015
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Proximity and position measurements with eddy current sensors are limited by the quality factor of the sensing coils. By enlarging the conductor path cross section, the quality factor can be increased. On ceramic multilayer substrates such cross sections, which are considerably larger in comparison to screen printed thick films, can be manufactured with an embossing and filling procedure, which is integrated into the conventional fabrication process. The conductor path layout is molded into the unfired ceramic substrate prior to filling the trenches completely with the conducting paste, thus generating a large cross section. This technique is applied for the sensing coil of an eddy current sensor. The higher quality factor leads to a doubled sensitivity in comparison to conventionally screen printed sensors. Due to the thermal and chemical durability of the ceramic substrate, the coils can be directly applied in a variety of harsh environment conditions, such as in situ engine monitoring. (C) 2011 Elsevier B.V. All rights reserved.
引用
收藏
页码:28 / 34
页数:7
相关论文
共 50 条
  • [31] Modelling wireless communication in highly-multipath low-loss environments
    Panitz, Mark
    Christopoulos, Christos
    Sewell, Phillip
    Hope, David
    Dawson, John
    Marvin, Andy
    2008 INTERNATIONAL SYMPOSIUM ON ELECTROMAGNETIC COMPATIBILITY (EMC EUROPE), 2008, : 123 - +
  • [32] Wireless LTCC-based capacitive pressure sensor for harsh environment
    Xiong, Jijun
    Li, Ying
    Hong, Yingping
    Zhang, Binzhen
    Cui, Tianhong
    Tan, Qiulin
    Zheng, Shijun
    Liang, Ting
    SENSORS AND ACTUATORS A-PHYSICAL, 2013, 197 : 30 - 37
  • [33] Wireless Temperature Sensor for Harsh Industrial Environments
    Kerezov, Alexander
    Kulkarni, Anupama
    Nihtianov, Stoyan
    IECON 2015 - 41ST ANNUAL CONFERENCE OF THE IEEE INDUSTRIAL ELECTRONICS SOCIETY, 2015, : 3986 - 3991
  • [34] Mobile Sensor Network Localization in Harsh Environments
    Chenji, Harsha
    Stoleru, Radu
    DISTRIBUTED COMPUTING IN SENSOR SYSTEMS, PROCEEDINGS, 2010, 6131 : 244 - 257
  • [35] Langasite SAW Pressure Sensor for Harsh Environments
    Moulzolf, Scott C.
    Behanan, Roby
    Lad, Robert J.
    da Cunha, Mauricio Pereira
    2012 IEEE INTERNATIONAL ULTRASONICS SYMPOSIUM (IUS), 2012, : 1224 - 1227
  • [36] Capacitive differential pressure sensor for harsh environments
    Moe, ST
    Schjolberg-Henriksen, K
    Wang, DT
    Lund, E
    Nysæther, J
    Furuberg, L
    Visser, M
    Fallet, T
    Bernstein, RW
    SENSORS AND ACTUATORS A-PHYSICAL, 2000, 83 (1-3) : 30 - 33
  • [37] Flat electromagnetic pressure sensor for harsh environments
    Dutoit, BM
    Pilloud, Y
    Elegibili, F
    Besse, PA
    Popovic, RS
    SENSORS AND ACTUATORS A-PHYSICAL, 2001, 91 (1-2) : 51 - 56
  • [38] Rugged Sensor Window Materials for Harsh Environments
    Bayya, Shyam
    Villalobos, Guillermo
    Kim, Woohong
    Sanghera, Jasbinder
    Hunt, Michael
    Aggarwal, Ishwar
    PHOTONICS APPLICATIONS FOR AVIATION, AEROSPACE, COMMERCIAL, AND HARSH ENVIRONMENTS V, 2014, 9202
  • [39] Low-loss and compact
    Rachel Won
    Nature Photonics, 2015, 9 (10) : 631 - 631
  • [40] Low-loss dielectrics
    Jonscher, AK
    JOURNAL OF MATERIALS SCIENCE, 1999, 34 (13) : 3071 - 3082