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Temperature field of complex soilscapes (by the example of the Vladimir opolie region)

机译:复杂土壤景观的温度场(以弗拉基米尔欧泊地区为例)

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Problems of the assessment of soil temperature regime at the polypedon level have yet to be solved. An approach suggested by the authors consists of three stages: (1) the characterization and prediction of the soil water regime as a factor influencing the soil temperature regime, (2) the obtaining of thermophysical functions for the particular elements of complex soilscapes, and (3) the calculation and assessment of the temperature regime of complex soilscapes in the form of the functional fields of soil temperature isopleths. This approach has been applied to predict the soil temperature regime of an arable field in the Vladimir opolie region. The complex soilscape of the field consists of medium loamy agrogray soils, agrogray soils with the second humus horizon, and podzolized agrogray soils. At the beginning of the growing season, minimum temperatures are observed in the areas of agrogray soils with the second humus horizon; the difference in soil temperatures at a depth of 20 cm reaches 1A degrees C, and the difference in the sum of active soil temperatures reaches 20A degrees C. Then, this difference changes considerably, so that the agrogray soils with the second humus horizon become warmer than the agrogray soils. In general, the functional field of soil temperatures within the complex soilscape is highly dynamic and diverse, which is specified by the variability in the water-physical and thermophysical properties of particular soils.
机译:在多足动物水平上评估土壤温度状况的问题尚未解决。作者提出的方法包括三个阶段:(1)将土壤水分状况作为影响土壤温度状况的因素进行表征和预测;(2)获得复杂土壤景观的特定元素的热物理功能,以及( 3)以土壤温度等值线的功能场形式,对复杂土壤景观的温度状态进行计算和评估。该方法已被用于预测弗拉基米尔鸦片地区耕地的土壤温度状况。该田地的复杂土壤景观包括中等壤质的农业灰壤,具有第二腐殖质水平的农业灰壤和荚果化的农业灰壤。在生长季节开始时,在第二腐殖质层位的农用土壤区域观察到最低温度。 20厘米深处的土壤温度差异达到1A摄氏度,有效土壤温度总和的差异达到20A摄氏度。然后,这种差异发生了很大变化,以至于第二腐殖质层位的农业灰色土壤变暖而不是农业土壤。一般而言,复杂土壤景观中土壤温度的功能场是高度动态和多样化的,这由特定土壤的水物理性质和热物理性质的可变性所指定。

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