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pH modelling in aquatic systems with time-variable acid-base dissociation constants applied to the turbid, tidal Scheldt estuary

机译:具有时变酸碱解离常数的水生系统pH建模应用于浑浊的潮汐Scheldt河口

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摘要

A new pH modelling approach is presented that explicitly quantifies the influence of biogeochemical processes on proton cycling and pH in an aquatic ecosystem, and which accounts for time variable acid-base dissociation constants. As a case study, the method is applied to investigate proton cycling and long-term pH trends in the Scheldt estuary (SW Netherlands, N Belgium). This analysis identifies the dominant biogeochemical processes involved in proton cycling in this heterotrophic, turbid estuary. Furthermore, information on the factors controlling the longitudinal pH profile along the estuary as well as long-term pH changes are obtained. Proton production by nitrification is identified as the principal biological process governing the pH. Its acidifying effect is mainly counteracted by proton consumption due to CO2 degassing. Overall, CO2 degassing generates the largest proton turnover in the whole estuary on a yearly basis. The main driver of long-term changes in the mean estuarine pH over the period 2001 to 2004 is the decreasing freshwater flow, which influences the pH directly via a decreasing supply of dissolved inorganic carbon and alkalinity, and also indirectly, via decreasing ammonia loadings and lower nitrification rates.
机译:提出了一种新的pH建模方法,该方法可以明确量化生物地球化学过程对水生生态系统中质子循环和pH的影响,并且可以说明随时间变化的酸碱解离常数。作为案例研究,该方法用于研究Scheldt河口(荷兰西南部,比利时)的质子循环和长期pH趋势。该分析确定了在该异养性浑浊河口中质子循环所涉及的主要生物地球化学过程。此外,可以获得有关控制沿河口纵向pH分布的因素以及长期pH变化的信息。通过硝化作用生产质子被认为是控制pH值的主要生物学过程。它的酸化作用主要是由于CO2脱气而消耗的质子所抵消。总体而言,二氧化碳脱气每年在整个河口产生最大的质子周转率。在2001年至2004年期间,河口平均pH值长期变化的主要驱动力是淡水流量的减少,这直接通过减少溶解的无机碳和碱的供应量而直接影响pH值,还间接地通过减少氨气的负载量来影响pH值。降低硝化率。

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