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首页> 外文期刊>Applied Engineering in Agriculture >TIME-DOMAIN AND FREQUENCY-DOMAIN REFLECTOMETRY TYPE SOIL MOISTURE SENSOR PERFORMANCE AND SOIL TEMPERATURE EFFECTS IN FINE- AND COARSE-TEXTURED SOILS
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TIME-DOMAIN AND FREQUENCY-DOMAIN REFLECTOMETRY TYPE SOIL MOISTURE SENSOR PERFORMANCE AND SOIL TEMPERATURE EFFECTS IN FINE- AND COARSE-TEXTURED SOILS

机译:时域和频率域反射型土壤湿度传感器性能和土壤温度效应细小粗糙土壤中

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摘要

The performances of six time-domain reflectometry (TDR) and frequency-domain reflectometry (FDR) type soil moisture sensors were investigated for measuring volumetric soil-water content (theta(nu)) in two different soil types. Soil-specific calibration equations were developed for each sensor using calibrated neutron probe-measured theta(nu.) Sensors were also investigated for their performance response in measuring theta(nu) to changes in soil temperature. The performance of all sensors was significantly different (P0.05) than the neutron probe-measured theta(nu) with the same sensor also exhibiting variation between soils. In the silt loam soil, the 5TE sensor had the lowest root mean squared error (RMSE) of 0.041 m(3)/m(3), indicating the best performance among all sensors investigated. The performance ranking of the other sensors from high performance to low was: TDR300 (High Clay Mode), CS616 (H) and 10HS, SA4150, TDR300 (Standard Mode), and CS616 (V) (H: horizontal installation and V: vertical installation). In the loamy sand, the CS616 (H) performed best with an RMSE of 0.014 m(3)/m(3) and the performance ranking of other sensors was: 5TE, CS616 (V), TDR300 (S), SA4150, and 10HS. When theta(nu) was near or above field capacity, the performance error of most sensors increased. Most sensors exhibited a linear response to increase in soil temperature. Most sensors exhibited substantial sensitivity to changes in soil temperature and the a response of the same sensor to high vs. normal soil temperatures differed significantly between the soils. All sensors underestimated theta(nu) in high temperature range in both soils. The ranking order of the magnitude of change in theta(nu) in response to 1 degrees C increase in soil temperature (from the lowest to the greatest impact of soil temperature on sensor performance) in silt loam soil was: SA4150, 5TE, TDR300 (S), 10HS, CS620, CS616 (H), and CS616 (V). The ranking order from lower to higher sensitivity to soil temperature changes in loamy sand was: 10HS, CS616 (H), 5TE, CS616 (V), SA4150, and TDR300 (S). When the data from all sensors and soils are pooled, the overall average of change in theta(nu) for a 1 degrees C increase in soil temperature was 0.21 m(3)/m(3) in silt loam soil and -0.052 m(3)/m(3) in loamy sand. When all TDR- and FDR-type sensors were pooled separately for both soils, the average change in theta(nu) for a 1 degrees C increase in soil temperature for the TDR- and FDR-type sensors was 0.1918 and -0.0273 m(3)/m(3), respectively, indicating that overall TDR-type sensors are more sensitive to soil temperature changes than FDR-type sensors when measuring theta(nu).
机译:研究了六个时域反射测量(TDR)和频域反射率(FDR)型土壤湿度传感器的性能,用于测量两种不同土壤类型的体积土壤 - 水含量(THETA(NU))。对于使用校准的中子探针测量的θ(NU。)测量的每个传感器开发了土壤特异性校准方程。还研究了它们在测量THETA(NU)以变化土壤温度方面的性能反应。除了具有相同传感器的中子探针测量的θ(nu),所有传感器的性能显着不同(p <0.05)也具有相同的传感器的中子探针测量的θ(nu)也表现出土壤之间的变化。在淤泥壤土土壤中,5TE传感器具有0.041米(3)/ m(3)的最低根平均平方误差(RMSE),表明所有传感器之间的最佳性能。从高性能到低电平的其他传感器的性能等级是:TDR300(高粘土模式),CS616(H)和10HS,SA4150,TDR300(标准模式)和CS616(V)(H:水平安装和V:垂直安装)。在植物砂中,CS616(H)最适合于0.014米(3)/ m(3)和其他传感器的性能等级是:5TE,CS616(V),TDR300(S),SA4150和10hs。当θ(nu)接近或高于现场容量时,大多数传感器的性能误差增加。大多数传感器表现出线性反应,以增加土壤温度。大多数传感器对土壤温度的变化以及相同传感器的响应表现出大量敏感性,并且在土壤之间的普通土壤温度显着不同。所有传感器都低估了两种土壤中的高温范围内的θ(nu)。 Theta(Nu)变化大小的排名顺序响应于1摄氏度的1摄氏度(从土壤温度最低对传感器性能对传感器性能的最大影响)的增加:SA4150,5TE,TDR300( S),10HS,CS620,CS616(H)和CS616(V)。从降低到植物砂中的土壤温度变化的排名顺序是:10HS,CS616(H),5TE,CS616(V),SA4150和TDR300。当汇集来自所有传感器和土壤的数据时,淤泥​​壤土土壤中1℃增加1摄氏度(NU)的整体平均值为0.21米(3)/ m(3),在-0.052米( 3)/ m(3)在壤土中。当所有TDR-和FDR型传感器分别用于土壤时,TDR-和FDR型传感器的土壤温度增加1℃的平均变化为0.1918和-0.0273 m(3 )/ m(3)分别表示在测量θ(nu)时,整个TDR型传感器对土壤温度变化比FDR型传感器更敏感。

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