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Improved Calibration Functions of Three Capacitance Probes for the Measurement of Soil Moisture in Tropical Soils

机译:三种电容探针在热带土壤中测量水分的改进校准功能

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Single capacitance sensors are sensitive to soil property variability. The objectives of this study were to: (i) establish site-specific laboratory calibration equations of three single capacitance sensors (EC-20, EC-10, and ML2x) for tropical soils, and (ii) evaluate the accuracy and precision of these sensors. Intact soil cores and bulk samples, collected from the top 20 and 80 cm soil depths at five locations across the Upper Mākaha Valley watershed, were analyzed to determine their soil bulk density (ρb), total porosity (θt), particle size distribution, and electrical conductivity (EC). Laboratory calibration equations were established using soil packed columns at six water content levels (0–0.5 cm3 cm−3). Soil bulk density and θt significantly varied with sampling depths; whereas, soil clay content (CC) and EC varied with sampling locations. Variations of ρb and θt at the two depths significantly affected the EC-20 and ML2x laboratory calibration functions; however, there was no effect of these properties on calibration equation functions of EC-10. There was no significant effect of sampling locations on the laboratory calibration functions suggesting watershed-specific equations for EC-20 and ML2x for the two depths; a single watershed-specific equation was needed for EC-10 for both sampling depths. The laboratory calibration equations for all sensors were more accurate than the corresponding default equations. ML2x exhibited better precision than EC-10, followed by EC-20. We conclude that the laboratory calibration equations can mitigate the effects of varying soil properties and improve the sensors’ accuracy for water content measurements.
机译:单电容传感器对土壤特性的变化敏感。这项研究的目的是:(i)建立针对热带土壤的三个单电容传感器(EC-20,EC-10和ML2x)的针对特定地点的实验室校准方程,以及(ii)评估这些传感器的准确性和精度。传感器。分析了完整的土壤核心和大块样品,这些样品是从Makakaha山谷上游分水岭的五个位置的20到80厘米深的土壤深度采集的,以确定它们的土壤堆密度(ρ b ),总孔隙度( θ t ),粒度分布和电导率(EC)。使用土壤填充柱在六个含水量水平(0–0.5 cm 3 cm -3 )上建立实验室校准方程。土壤容重和θ t 随采样深度的变化而显着变化。然而,土壤黏土含量(CC)和EC随采样位置而变化。 ρ b 和θ t 在两个深度处的变化显着影响了EC-20和ML2x实验室校准功能。但是,这些特性对EC-10的校准方程函数没有影响。采样位置对实验室校准功能没有显着影响,表明两个深度的EC-20和ML2x的分水岭特定方程;对于EC-10,两个采样深度都需要一个特定的分水岭方程。所有传感器的实验室校准方程比相应的默认方程更准确。 ML2x的精度优于EC-10,其次是EC-20。我们得出的结论是,实验室校准方程可以减轻土壤特性变化的影响,并提高传感器测量水含量的准确性。

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