Inversion of TDR signals -: revisited

被引:8
作者
Baenninger, Dominik [1 ]
Wunderli, Hans [2 ]
Nussberger, Mathis
Fluehler, Hannes [3 ]
机构
[1] Univ Basel, Inst Environm Geosci, CH-4056 Basel, Switzerland
[2] ETH, Inst Terrestail Ecosyst, CH-8092 Zurich, Switzerland
[3] ETH, Inst Terrestrial Ecosyst, CH-8092 Zurich, Switzerland
关键词
TDR; inversion; water content; transmission line;
D O I
10.1002/jpln.200700179
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
In this study, we discuss the consistence of measured and calculated TDR traces. The calculated traces are solutions of a time domain reflectometry (TDR) forward solver, an algorithm for a computing the TDR trace for a given dielectric profile along a transmission line. An unambiguous and efficient forward solver is a prerequisite for a good solution of the inverse problem, i.e., to extract the spatial distribution of the dielectric properties along the transmission line from a TDR trace. To advance our understanding of TDR inversion, we proceeded in two steps: (1) design of a TDR head section with minimal disturbances on the signal and (2) searching for causes why measured and predicted TDR traces differ. Based on a first experiment with a three-rod TDR probe of 100 cm length, we demonstrated that our TDR forward solver-like others presented in literature-approximate the measured TDR traces apparently well but not precisely enough for signal inversion. In a second experiment, using a two-rod TDR probe of 70 cm length, we addressed the problem of non-parallel transmission lines. We found that the influence of a non-parallel installation is similar to an increase of the electrical conductivity in soil water but can be distinguished from this property. A third experiment reveals that lateral and longitudinal disturbances in the vicinity of a TDR probe are of minor importance. From the analysis of our experiments, we found that neither lateral disturbances nor non-parallel rods are responsible for the deviations between calculated and measured traces. This analysis showed us that structure in the sampled medium affects the shape of the TDR traces. Since minor deviations are essential for TDR-signal inversion, we need new concepts to handle the fuzziness between measurements and calculations.
引用
收藏
页码:137 / 145
页数:9
相关论文
共 26 条
[1]  
BACHTOLD W, 1998, LINEARE ELEMENTE HOC
[2]   THE TIME-DOMAIN REFLECTOMETRY METHOD FOR MEASURING SOIL-WATER CONTENT AND SALINITY [J].
DALTON, FN ;
VANGENUCHTEN, MT .
GEODERMA, 1986, 38 (1-4) :237-250
[3]   MICROWAVE DIELECTRIC BEHAVIOR OF WET SOIL .2. DIELECTRIC MIXING MODELS [J].
DOBSON, MC ;
ULABY, FT ;
HALLIKAINEN, MT ;
ELRAYES, MA .
IEEE TRANSACTIONS ON GEOSCIENCE AND REMOTE SENSING, 1985, 23 (01) :35-46
[4]   Theoretical model of a multisection time domain reflectometry measurement system [J].
Feng, W ;
Lin, CP ;
Deschamps, RJ ;
Drnevich, VP .
WATER RESOURCES RESEARCH, 1999, 35 (08) :2321-2331
[5]   Transverse sample area of two- and three-rod time domain reflectometry probes:: Electrical conductivity -: art. no. 1261 [J].
Ferré, TPA ;
Nissen, HH ;
Knight, JH ;
Moldrup, P .
WATER RESOURCES RESEARCH, 2003, 39 (09) :SBH101-SBH109
[6]   DESIGN OF TRIPLE-WIRE TIME-DOMAIN REFLECTOMETRY PROBES IN PRACTICE AND THEORY [J].
HEIMOVAARA, TJ .
SOIL SCIENCE SOCIETY OF AMERICA JOURNAL, 1993, 57 (06) :1410-1417
[7]   Modelling of electromagnetic wave propagation along transmission lines in inhomogeneous media [J].
Huebner, C. ;
Kupfer, K. .
MEASUREMENT SCIENCE AND TECHNOLOGY, 2007, 18 (04) :1147-1154
[8]   Time domain reflectometry measurement principles and applications [J].
Jones, SB ;
Wraith, JM ;
Or, D .
HYDROLOGICAL PROCESSES, 2002, 16 (01) :141-153
[9]  
Kunz S., 1993, FINITE DIFFERENCE TI
[10]   Efficient reconstruction of dispersive dielectric profiles using time domain reflectometry (TDR) [J].
Leidenberger, P. ;
Oswald, B. ;
Roth, K. .
HYDROLOGY AND EARTH SYSTEM SCIENCES, 2006, 10 (02) :209-232