首页> 外文期刊>Acta Agriculturae Scandinavica. Section B, Soil and Plant Science >Measuring and predicting soil moisture conditions for trafficability
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Measuring and predicting soil moisture conditions for trafficability

机译:测量和预测土壤湿度条件以提高可运输性

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摘要

The main cause of loss of soil structural stability is vehicle operation on unpaved wet surfaces. Unfortunately, there is a lack of continuous soil moisture data in predicting trafficable conditions. To measure changes in soil moisture conditions in real time, Percostation (Adek) sensors were installed in sandy loam Stagnosol soil at different depths. Problems with soil trafficability can be expected at the plastic limit, and the soil is unable to support vehicle operations at the liquid limit in such soils. The maximum water-holding capacity of the soil is 32%, the field capacity is 25%, the plastic limit is 22%, and the liquid limit is 30%. With rainfall of more than 10 mm d(-1), the moisture content reached the plastic limit in the upper 25 cm of soil. The average increase in the soil moisture content after more than 10 mm of rain was 1-2.5% in a time frame of 2-3 hours. After rain, the previous soil moisture level was obtained within 2 to 3 days in the vegetation period. Measurements also allowed soil water balance and evapotranspiration modelling data to predict soil moisture conditions with an accuracy of one day but failed to predict in a shorter period.
机译:失去土壤结构稳定性的主要原因是在未铺砌的潮湿表面上进行车辆操作。不幸的是,在预测可通行条件时缺乏连续的土壤水分数据。为了实时测量土壤湿度条件的变化,在不同深度的沙壤土Stagnosol土壤中安装了Percostation(Adek)传感器。在可塑性极限下,土壤可运输性的问题是可预期的,并且在这种土壤中,土壤不能在液体极限下支持车辆的操作。土壤的最大持水量为32%,田间持水量为25%,可塑性极限为22%,液体极限为30%。当降雨超过10毫米d(-1)时,土壤上部25厘米的水分含量达到可塑性极限。在2-3小时的时间内,超过10毫米的降雨后,土壤含水量的平均增加为1-2.5%。雨后,在植被期的2至3天内获得了先前的土壤湿度水平。测量还使土壤水平衡和蒸散模型数据能够以一天的精度预测土壤水分状况,但无法在较短的时间内进行预测。

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