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Water table fluctuations and soil biogeochemistry: An experimental approach using an automated soil column system

机译:地下水位波动和土壤生物地球化学:使用自动土壤柱系统的实验方法

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摘要

Water table fluctuations significantly affect the biological and geochemical functioning of soils. Here, we introduce an automated soil column system in which the water table regime is imposed using a computer- controlled, multi-channel pump connected to a hydrostatic equilibrium reservoir and a water storage reservoir. The potential of this new system is illustrated by comparing results from two columns filled with 45 cm of the same homogenized riparian soil. In one soil column the water table remained constant at -20 cm below the soil surface, while in the other the water table oscillated between the soil surface and the bottom of the column, at a rate of 4.8 cm d~(-1). The experiment ran for 75 days at room temperature (25 ± 2 ℃). Micro-sensors installed at -10 and -30 cm below the soil surface in the stable water table column recorded constant redox potentials on the order of 600 and -200 mV, respectively. In the fluctuating water table column, redox potentials at the same depths oscillated between oxidizing (~700 mV) and reducing (~-100 mV) conditions. Pore waters collected periodically and solid-phase analyses on core material obtained at the end of the experiment highlighted striking geochemical differences between the two columns, especially in the time series and depth distributions of Fe, Mn, K, P and S. Soil CO2 emissions derived from headspace gas analysis exhibited periodic variations in the fluctuating water table column, with peak values during water table drawdown. Transient redox conditions caused by the water table fluctuations enhanced microbial oxidation of soil organic matter, resulting in a pronounced depletion of particulate organic carbon in the midsection of the fluctuating water table column. Denaturing Gradient Gel Electrophoresis (DGGE) revealed the onset of differentiation of the bacterial communities in the upper (oxidizing) and lower (reducing) soil sections, although no systematic differences in microbial community structure between the stable and fluctuating water table columns were detected.
机译:地下水位波动会严重影响土壤的生物和地球化学功能。在这里,我们介绍了一种自动土壤柱系统,该系统中的地下水位是通过使用计算机控制的多通道泵来施加的,该泵与静水平衡水库和储水库连接。通过比较填充有45厘米相同均质河岸土壤的两根色谱柱的结果,可以说明这种新系统的潜力。在一个土壤柱中,地下水位在土壤表层以下-20 cm处保持恒定,而在另一个土壤柱中,地下水位在土壤表层与柱底之间以4.8 cm d〜(-1)的速率振荡。实验在室温(25±2℃)下进行了75天。在稳定的地下水位列中的土壤表面以下-10和-30 cm处安装的微型传感器记录的恒定氧化还原电势分别为600和-200 mV。在波动的地下水位栏中,在相同深度处的氧化还原电位在氧化(〜700 mV)和还原(〜-100 mV)条件之间振荡。定期收集的孔隙水和对实验结束时获得的岩心材料进行固相分析,突显了两根色谱柱之间明显的地球化学差异,特别是在铁,锰,钾,磷和硫的时间序列和深度分布方面。土壤二氧化碳排放从顶空气体分析得出的结果在波动的地下水位列中表现出周期性变化,在地下水位下降期间出现峰值。地下水位波动引起的瞬态氧化还原条件增强了土壤有机质的微生物氧化,导致地下水位波动的中间部分颗粒有机碳明显耗竭。变性梯度凝胶电泳(DGGE)揭示了上部(氧化)和下部(还原)土壤区域细菌群落分化的开始,尽管在稳定和波动的地下水位柱之间未发现微生物群落结构的系统差异。

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