Natural Resources and Environmental Management Department, University of Hawaii-Manoa, Honolulu, HI 96822, USA.
Sensors (Basel). 2011;11(6):6354-69. doi: 10.3390/s110606354. Epub 2011 Jun 16.
Spatially variable soil properties influence the performance of soil water content monitoring sensors. The objectives of this research were to: (i) study the spatial variability of bulk density (ρ(b)), total porosity (θ(t)), clay content (CC), electrical conductivity (EC), and pH in the upper Mākaha Valley watershed soils; (ii) explore the effect of variations in ρ(b) and θ(t) on soil water content dynamics, and (iii) establish field calibration equations for EC-20 (Decagon Devices, Inc), ML2x (Delta-T-Devices), and SM200 (Delta-T-Devices) sensors to mitigate the effect of soil spatial variability on their performance. The studied soil properties except pH varied significantly (P < 0.05) across the soil water content monitoring depths (20 and 80 cm) and six locations. There was a linear positive and a linear inverse correlation between the soil water content at sampling and ρ(b), and between the soil water content at sampling and θ(t), respectively. Values of laboratory measured actual θ(t) correlated (r = 0.75) with those estimated from the relationship θ(t) = 1 - ρ(b)/ρ(s), where ρ(s) is the particle density. Variations in the studied soil properties affected the performance of the default equations of the three tested sensors; they showed substantial under-estimations of the actual water content. The individual and the watershed-scale field calibrations were more accurate than their corresponding default calibrations. In conclusion, the sensors used in this study need site-specific calibrations in order to mitigate the effects of varying properties of the highly weathered tropical soils.
土壤属性的空间变异性会影响土壤水分监测传感器的性能。本研究的目的是:(i) 研究上层 Mākaha 流域土壤的体积密度(ρ(b))、总孔隙度(θ(t))、粘粒含量(CC)、电导率(EC)和 pH 的空间变异性;(ii) 探讨 ρ(b)和θ(t)的变化对土壤水分动态的影响;(iii) 建立 EC-20(Decagon Devices,Inc)、ML2x(Delta-T-Devices)和 SM200(Delta-T-Devices)传感器的田间校准方程,以减轻土壤空间变异性对其性能的影响。除 pH 外,研究的土壤性质在土壤水分监测深度(20 和 80 cm)和六个位置均有显著差异(P < 0.05)。土壤水分与 ρ(b)之间呈线性正相关,与θ(t)之间呈线性负相关。采样时的土壤水分与 ρ(b)和θ(t)之间存在线性正相关和线性负相关关系。实验室测量的实际θ(t)值与从关系θ(t) = 1 - ρ(b)/ρ(s)(其中 ρ(s)为颗粒密度)估计的θ(t)值相关(r = 0.75)。所研究的土壤性质的变化影响了三个测试传感器的默认方程的性能;它们对实际含水量的估计明显偏低。个体和流域尺度的现场校准比相应的默认校准更准确。总之,为了减轻高度风化的热带土壤性质变化的影响,本研究中使用的传感器需要进行特定地点的校准。