Materials Map

Discover the materials research landscape. Find experts, partners, networks.

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The Materials Map is an open tool for improving networking and interdisciplinary exchange within materials research. It enables cross-database search for cooperation and network partners and discovering of the research landscape.

The dashboard provides detailed information about the selected scientist, e.g. publications. The dashboard can be filtered and shows the relationship to co-authors in different diagrams. In addition, a link is provided to find contact information.

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The Materials Map is still under development. In its current state, it is only based on one single data source and, thus, incomplete and contains duplicates. We are working on incorporating new open data sources like ORCID to improve the quality and the timeliness of our data. We will update Materials Map as soon as possible and kindly ask for your patience.

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in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (15/15 displayed)

  • 2021Application of a dagger probe for soil dielectric permittivity measurement by TDR24citations
  • 2020Application of a Monopole Antenna Probe with an Optimized Flange Diameter for TDR Soil Moisture Measurement19citations
  • 2020Time domain transmission sensor for soil moisture profile probe, selected technical aspects 1citations
  • 2020Evaluation of a Multi-Rod Probe Performance for Accurate Measurements of Soil Water Content1citations
  • 2020Dielectric Properties of Glass Beads with Talc as a Reference Material for Calibration and Verification of Dielectric Methods and Devices for Measuring Soil Moisture14citations
  • 2020Wideband Characterization of Soil Complex Dielectric Permittivity Spectrumcitations
  • 2019Impact of soil salinity, texture and measurement frequency on the relations between soil moisture and 20 MHz–3 GHz dielectric permittivity spectrum for soils of medium texture46citations
  • 2019An open-ended probe with an antenna for the measurement of the water content in the soil17citations
  • 2019Verification of soil salinity index model based on 0.02–3 GHz complex dielectric permittivity spectrum measurements8citations
  • 2019Seven-Rod Dielectric Sensor for Determination of Soil Moisture in Small Volumescitations
  • 2019A Seven-Rod Dielectric Sensor for Determination of Soil Moisture in Well-Defined Sample Volumes15citations
  • 2018Electromagnetic multi-simulation method for determining dielectric permittivity spectrumcitations
  • 2018Impact of soil salinity on the relation between soil moisture and dielectric permittivity17citations
  • 2018Comparison between coaxial transmission line methods by measurement of porous clay samples of varying moisture content1citations
  • 2017Soil salinity characterization based on 0.05-3 GHz dielectric permittivity measurements3citations

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Skierucha, W.
14 / 19 shared
Majcher, Jacek
4 / 4 shared
Lewandowski, Arkadiusz
15 / 24 shared
Kafarski, M.
14 / 17 shared
Wilczek, A.
15 / 18 shared
Woszczyk, Aleksandra
6 / 6 shared
Szerement, J.
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Włoszczyk, Aleksandra
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Furuhata, Kahori
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Yagihara, Shin
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Saito, Hironobu
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Fukuzaki, Minoru
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Jones, Scott B.
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Sabouroux, P.
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Skic, Kamil
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Neves, A.
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Ayoub, M. W. Ben
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Letertre, T.
1 / 1 shared
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Co-Authors (by relevance)

  • Skierucha, W.
  • Majcher, Jacek
  • Lewandowski, Arkadiusz
  • Kafarski, M.
  • Wilczek, A.
  • Woszczyk, Aleksandra
  • Szerement, J.
  • Włoszczyk, Aleksandra
  • Furuhata, Kahori
  • Yagihara, Shin
  • Saito, Hironobu
  • Fukuzaki, Minoru
  • Jones, Scott B.
  • Sabouroux, P.
  • Skic, Kamil
  • Neves, A.
  • Ayoub, M. W. Ben
  • Letertre, T.
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article

Application of a Monopole Antenna Probe with an Optimized Flange Diameter for TDR Soil Moisture Measurement

  • Skierucha, W.
  • Szerement, J.
  • Szypłowska, A.
  • Majcher, Jacek
  • Lewandowski, Arkadiusz
  • Kafarski, M.
  • Wilczek, A.
  • Woszczyk, Aleksandra
Abstract

Soil volumetric water content (θ) is a parameter describing one of the most important factors conditioning proper plant growth. Monitoring soil moisture is of particular importance in the rational use of water resources for irrigation, especially during periods of water scarcity. This paper presents a method of measuring soil moisture in the vicinity of the plant root system by means of a probe designed to be mounted on a mobile device used for precise plant irrigation. Due to the specific field conditions of the measurement, the design of the probe was proposed as a monopole antenna. Electromagnetic simulations of the probe were carried out with Ansys HFSS software to optimise its dimensions. Then a prototype of the probe was manufactured to conduct laboratory measurements with the use of a vector network analyser (VNA) working in the 20 kHz to 8 GHz frequency range. The VNA analyser was configured to work in the time-domain reflectometry (TDR) mode. From measurements of the time distance between reflections from the probe’s elements it is possible to calculate the bulk dielectric permittivity of the soil surrounding the probe. Next, based on commonly used soil moisture dielectric calibrations one can determine θ of the soil sample. The paper presents simulation results and laboratory tests of an antenna probe. Due to its tough and durable design, this type of probe gives the possibility of easy application in field conditions, which makes it especially suitable for mechanically demanding measurement systems. As the sensitivity zone is comparatively large, this probe is well-suited to measuring soil moisture in the vicinity of the plant root system.

Topics
  • impedance spectroscopy
  • simulation
  • reflectometry