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首页> 外文期刊>Geoderma: An International Journal of Soil Science >Rapid, quantitative and spatial field measurements of soil pH using an Ion Sensitive Field Effect Transistor
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Rapid, quantitative and spatial field measurements of soil pH using an Ion Sensitive Field Effect Transistor

机译:使用离子敏感场效应晶体管对土壤pH值进行快速,定量和空间测量

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摘要

The objectives of this work are threefold. Firstly, to determine adequate times for rapid and accurate field-based measurements of soil pH (field pH). Secondly, to develop a simple protocol for quantitative spatial field measurements of soil pH using an Ion Sensitive Field Effect Transistor (ISFET) and thirdly, to demonstrate and validate its implementation. In order to determine adequate times, the kinetics of soil pH reactions in 1:5 soil/0.01 M CaCl2 (pH(Ca)) and soil/H2O (pH(w)) suspensions were quantified for 17 representative agricultural soil samples from Brittany, France. The mean and variance of pH deviations at various times, from the long-term equilibrium pH as well as the accuracy of the measurements, were calculated for both pH(Ca) and pH(w). These data together with the required accuracy of the measurements may be used to determine an adequate time for field pH measurements. The mean and variance of the deviations decreased and the accuracy of measurements increased with longer reaction times. For example, the expected accuracy of 10 s pH(Ca) and pH(w) measurements was 0.15 and 0.33 pH units, respectively. The expected accuracy of 20 s pH(Ca) and pH(w) measurements was 0.11 and 0.15 units, respectively. Based on these data, a simple protocol for rapid field pH measurements was developed. This protocol was implemented by making 10 s pH(w) measurements in a 4-ha agricultural field near Rennes, France. A total of 476 pH, data were collected in 6 h. At 57 validation sites, measurements were obtained using conventional grid sampling and laboratory analysis (laboratory pH(w)). The observed accuracy of the 10 s field pH(w) measurements was 0.34 pH units. The efficiency of the field and laboratory pH(w) measurements was also compared. Field measurements were more efficient in terms of both the time and cost involved in obtaining the measurements. Semivariograms and kriged maps of both laboratory and field pH, measurements were compared, the latter appearing to more truthfully depict the spatial structure of soil pH(w) in the field. A cross-semivariogram of the laboratory and the 10 s field pH(w) measurements was also derived and co-kriging performed. Where time and/or economic restrictions prevent the use of sampling and laboratory analysis or the collection of more accurate field pH measurements, a co-kriging of a smaller set of these data as the primary variable along with a more exhaustive data set of more rapid but less accurate field pH measurements as the secondary variable may be practical and advantageous. Temporal measurements of field pH(w) at the 57 validation sites over 2 years showed good agreement. (C) 2003 Elsevier B.V. All rights reserved
机译:这项工作的目标是三个方面。首先,确定足够的时间来进行基于野外的土壤pH值的快速准确的测量(田地pH)。其次,开发一种使用离子敏感场效应晶体管(ISFET)进行土壤pH定量空间场测量的简单协议,其次,以演示和验证其实现。为了确定合适的时间,对布列塔尼的17种代表性农业土壤样品中的1:5土壤/0.01 M CaCl2(pH(Ca))和土壤/ H2O(pH(w))悬浮液中的土壤pH反应动力学进行了定量,法国。针对pH(Ca)和pH(w),计算了长期平衡pH在不同时间的pH偏差的平均值和方差以及测量的准确性。这些数据以及所需的测量精度可用于确定现场pH测量的足够时间。随着反应时间的延长,偏差的均值和方差减小,测量精度提高。例如,10 s pH(Ca)和pH(w)测量的预期精度分别为0.15和0.33 pH单位。 20 s pH(Ca)和pH(w)测量的预期精度分别为0.11和0.15单位。基于这些数据,开发了一种用于快速现场pH测量的简单方案。通过在法国雷恩附近的4公顷农田中进行10 s pH(w)测量来实施该协议。在6小时内收集了总共476个pH值的数据。在57个验证点,使用常规网格采样和实验室分析(实验室pH(w))获得测量值。观察到的10 s现场pH(w)测量的准确性为0.34 pH单位。还比较了现场效率和实验室pH(w)测量。就获得测量所需的时间和成本而言,现场测量效率更高。比较了实验室和田间pH值的半变异函数图和kriged图,比较了测量值,后者似乎更真实地描绘了田间土壤pH(w)的空间结构。还得出了实验室的交叉半变异图和10 s现场pH(w)测量值,并进行了共同克里格法。在时间和/或经济限制导致无法使用采样和实验室分析或无法收集更准确的现场pH测量值的情况下,将这些数据的较小集合作为主要变量与更详尽的数据集一起进行联合克里格快速采样但是作为次要变量的准确度较低的现场pH测量可能是实用且有利的。在过去的2年中,对57个验证地点的现场pH(w)进行了时间测量,结果显示出良好的一致性。 (C)2003 Elsevier B.V.保留所有权利

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