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The effect of freezing and thawing on water flow and MCPA leaching in partially frozen soil

机译:冻融对部分冻土中水流和MCPA淋溶的影响

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Limited knowledge and experimental data exist on pesticide leaching through partially frozen soil. The objective of this study was to better understand the complex processes of freezing and thawing and the effects these processes have on water flow and pesticide transport through soil. To achieve this we conducted a soil column irrigation experiment to quantify the transport of a non-reactive tracer and the herbicide MCPA in partially frozen soil. In total 40 intact topsoil and subsoil columns from two agricultural fields with contrasting soil types (silt and loam) in South-East Norway were used in this experiment. MCPA and bromide were applied on top of all columns. Half the columns were then frozen at -3 degrees C while the other half of the columns were stored at +4 degrees C. Columns were then subjected to repeated irrigation events at a rate of 5 mm artificial rainwater for 5 h at each event. Each irrigation was followed by 14-day periods of freezing or refrigeration. Percolate was collected and analysed for MCPA and bromide. The results show that nearly 100% more MCPA leached from frozen than unfrozen topsoil columns of Hov silt and Kroer loam soils. Leaching patterns of bromide and MCPA were very similar in frozen columns with high concentrations and clear peaks early in the irrigation process, and with lower concentrations leaching at later stages. Hardly any MCPA leached from unfrozen topsoil columns (0.4-0.5% of applied amount) and concentrations were very low. Bromide showed a different flow pattern indicating a more uniform advective-dispersive transport process in the unfrozen columns with higher concentrations leaching but without clear concentration peaks. This study documents that pesticides can be preferentially transported through soil macropores at relatively high concentrations in partially frozen soil. These findings indicate, that monitoring programs should include sampling during snow melt or early spring in areas were soil frost is common as this period could imply exposure peaks in groundwater or surface water.
机译:关于农药通过部分冰冻的土壤浸出的知识和实验数据有限。这项研究的目的是更好地了解冷冻和融化的复杂过程,以及这些过程对水流和农药在土壤中运输的影响。为了实现这一目标,我们进行了土壤柱灌溉实验,以量化非反应性示踪剂和除草剂MCPA在部分冷冻土壤中的运输。在该实验中,总共使用了来自挪威东南部两个具有不同土壤类型(淤泥和壤土)的农田的40个完整的表土和地下土壤柱。将MCPA和溴化物应用于所有色谱柱的顶部。然后将一半的柱子冷冻在-3摄氏度下,而另一半的柱子则储存在+4摄氏度下。然后,在每次事件中,以5毫米人造雨水的速度对这些柱子进行重复灌溉事件5小时。每次灌溉后都要进行14天的冷冻或冷藏。收集渗滤液并分析其MCPA和溴化物。结果表明,与未冻结的粉砂土和克罗尔壤土相比,冻结的MCPA比未冻结的表层土多出100%。冷冻柱中溴化物和MCPA的浸出模式非常相似,在灌溉过程的早期有高浓度和清晰的峰,而在后期则有较低浓度的浸出。几乎没有任何MCPA从未冻结的表层土柱中浸出(占应用量的0.4-0.5%),并且浓度非常低。溴化物显示出不同的流动模式,这表明在未冻结的色谱柱中,对流扩散过程更加均匀,浸出浓度较高,但没有明显的浓度峰。这项研究表明,农药可以优先以较高浓度在部分冷冻的土壤中通过土壤大孔运输。这些发现表明,监测计划应包括在融化土壤或霜冻很普遍的地区的融雪或早春期间取样,因为这段时期可能暗示着地下水或地表水中的暴露峰值。

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