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Evaluation of soil structure and physical properties influenced by weather conditions during autumn-winter-spring season

机译:秋季春季天气条件影响土壤结构及物理性质的评价

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摘要

Physical state of the upper soil layer is susceptible to external factors, including weather conditions. It concerns in particular a soil without plant cover or mulching. Significant soil structure transformations could arise especially due to the globally observed climate change which e.g. increases the possibility of extreme precipitation events. Therefore, we evaluated the seasonal changes of structure of the uncovered 0-5 cm soil layer and their effect on other physical properties in relation to precipitation and air temperature. Both the direct evaluation of soil structure by quantitative image analysis and the measurements of structure-dependent parameters as water and air contents and permeabilities were conducted to describe soil physical state in detail. Soil samples were taken on 4 dates during the 2009/2010 season from a Haplic Luvisol developed from loess-like deposits. The largest alterations of soil structure were detected in spring, after the soil had thawed completely and had been affected by the heavy and long-term precipitation. During the season soil structure transformed from aggregate into non-aggregate one and the rearrangement of soil pore size distribution occurred. Soil showed very high available water capacity and mostly medium saturated hydraulic conductivity, but field air capacity and corresponding air permeability decreased below values required for good plant condition. The total volume of pores correlated negatively with precipitation and temperature. Actual water content was strongly positively correlated with the precipitation amount shortly before sampling. There was no statistically valid correlation between saturated hydraulic conductivity and precipitation or temperature. Furthermore, air permeabilities for selected groups of pores showed contrasting trends with precipitation, dependent on the studied span of time. The temperature influenced the intensity of soil drying and freezing-thawing processes. Most of the identified alterations of soil physical state could be attributed however to mechanical impact of rain which remodelled pores and solid phase in the studied soil layer. (C) 2017 Elsevier B.V. All rights reserved.
机译:上层土层的物理状态易受外部因素的影响,包括天气条件。它特别涉及没有植物覆盖或覆盖的土壤。由于全球观察到的气候变化,因此可能出现显着的土壤结构转换,这是一般的气候变化。增加极端降水事件的可能性。因此,我们评估了揭露的0-5厘米土层的结构的季节变化及其对沉淀和空气温度的其他物理性质的影响。通过定量图像分析的土壤结构的直接评价和结构依赖参数的测量作为水和空气含量和渗透率,详细描述了土壤物理状态。在2009/2010季节,从黄土沉积物开发的单塑料洛维索尔赛季中拍摄了4个日期。在春天,土壤完全解冻后,春天检测到最大的土壤结构改变,受重和长期降水的影响。在季节土壤结构期间,从骨料转化为非骨料,并且发生土壤孔径分布的重排。土壤显示出非常高的可用水容量和大多数中等饱和液压导电性,但场空气能力和相应的透气性降低了良好植物状况所需的值。孔的总体积与沉淀和温度负相关。在取样之前,实际含水量与沉淀量强烈呈正相关。饱和液压导电性和沉淀或温度之间没有统计学上有效的相关性。此外,所选孔组的空气渗透性显示出沉淀的对比趋势,取决于所研究的时间跨度。温度影响了土壤干燥和冷冻解冻过程的强度。然而,土壤物理状态的大多数改变可能是由于雨的机械撞击,在所研究的土层中改造孔隙和固相。 (c)2017 Elsevier B.v.保留所有权利。

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