Microstrip transmission line for soil moisture measurement

被引:4
|
作者
Chen, XM [1 ]
Li, J [1 ]
Liang, R [1 ]
Sun, RJ [1 ]
Liu, CR [1 ]
Rogers, R [1 ]
Claros, G [1 ]
机构
[1] Univ Houston, Dept ECE, Houston, TX 77204 USA
来源
关键词
microstrip transmission line; soil moisture measurement;
D O I
10.1117/12.571448
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
Pavement life span is often affected by the amount of voids in the base and subgrade soils, especially moisture content in pavement. Most available moisture sensors are based on the capacitive sensing using planar blades. Since the planar sensor blades are fabricated on the same surface to reduce the overall size of the sensor, such structure cannot provide very high accuracy for moisture content measurement. As a consequence, a typical capacitive moisture sensor has an error in the range of 30%. A more accurate measurement is based on the time domain refelctometer (TDR) measurement. However, typical TDR system is fairly expensive equipment, very large in size, and difficult to operate, the moisture content measurement is limited. In this paper, a novel microstrip transmission line based moisture sensor is presented. This sensor uses the phase shift measurement of RF signal going through a transmission line buried in the soil to be measured. Since the amplitude of the transmission measurement is a strong function of the conductivity (loss of the media) and the imaginary part of dielectric constant, and the phase is mainly a strong function of the real part of the dielectric constant, measuring phase shift in transmission mode can directly obtain the soil moisture information. This sensor was designed and implemented. Sensor networking was devised. Both lab and field data show that this sensor is sensitive and accurate.
引用
收藏
页码:84 / 91
页数:8
相关论文
共 50 条
  • [31] Parametric Amplification in a Superconducting Microstrip Transmission Line
    Shan, Wenlei
    Sekimoto, Yutaro
    Noguchi, Takashi
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2016, 26 (06)
  • [32] The Influence of Temperature on Microstrip Transmission Line Characteristics
    Sagiyeva, Indira Y.
    Nosov, Alexander, V
    Surovtsev, Roman S.
    2020 21ST INTERNATIONAL CONFERENCE ON YOUNG SPECIALISTS ON MICRO/NANOTECHNOLOGIES AND ELECTRON DEVICES (EDM), 2020, : 187 - 190
  • [33] Analysis on Microstrip Transmission Line Surface Coatings
    Mueller, Simon
    Thull, Rene
    Huber, Maximilian
    Diewald, Andreas R.
    2016 LOUGHBOROUGH ANTENNAS & PROPAGATION CONFERENCE (LAPC), 2016,
  • [34] Microstrip transmission line with complex conductor shape
    Gnilenko, AB
    ELECTRONICS LETTERS, 1997, 33 (09) : 786 - 787
  • [35] PIPE ENCLOSED MICROSTRIP TRANSMISSION-LINE
    PATIL, KB
    MAITI, SK
    MAHAPATRA, S
    ELECTRONICS LETTERS, 1991, 27 (14) : 1291 - 1293
  • [36] HTSC microstrip transmission line and its discontinuities
    Yu, Tiejun
    Zhang, Xuexia
    Gao, Baoxin
    Chinese Journal of Electronics, 1996, 5 (02): : 8 - 11
  • [37] ON THE RADIATION SENSIBILITY OF A MICROSTRIP TRANSMISSION-LINE
    CICCHETTI, R
    PIRONE, C
    MICROWAVE AND OPTICAL TECHNOLOGY LETTERS, 1993, 6 (14) : 820 - 823
  • [38] The Field Domain FMR Linewidth Measurement by a Microstrip Line Transmission Resonator Perturbation Technique.
    Sokolov, A. S.
    Chen, Y.
    Harris, V. G.
    2015 IEEE MAGNETICS CONFERENCE (INTERMAG), 2015,
  • [39] Research on Soil Moisture Measurement Using Moisture Sensor
    Hatanaka, Daisuke
    Ahrary, Alireza
    Ludena, Dennis
    2015 IIAI 4TH INTERNATIONAL CONGRESS ON ADVANCED APPLIED INFORMATICS (IIAI-AAI), 2015, : 663 - 668
  • [40] On-line moisture measurement by Hydronix
    Board, R
    CANADIAN CERAMICS QUARTERLY-JOURNAL OF THE CANADIAN CERAMIC SOCIETY, 1997, 66 (02): : 99 - 102