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Sensitivity of the marine biospheric Si cycle for biogeochemical parameter variations

机译:海洋生物圈硅循环对生物地球化学参数变化的敏感性

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摘要

A systematic quantitative assessment of the marine silicon cycle is presented, based on a prognostic coupled water column-sediment global biogeochemical ocean general circulation model (HAMOCC). The resulting tracer distributions are compared with a comprehensive marine Si database of measurements. The model parameters which govern the Si cycle within the model world are optimized through a linear response model. The functional relationships between the Si cycle parameters and the Si tracer distributions are derived from a series of sensitivity experiments addressing opal export production, particle flux through the water column, porewater chemistry, and external biogeochemical forcing. The most important parameters for a further quantitative improvement of the simulation are depth-dependent opal dissolution kinetics, a productivity-dependent opal settling velocity, a general change in maximum Si uptake velocity V_(max)~(opal), and the clay as well as the Si input from continental weathering. The modeled Si budget shows a larger global export production, larger opal deposition rates onto the sediment surface and higher diffusive transports of porewater silicic acid into the open water column as estimated by Treguer et al [1995].
机译:基于预后的水柱-沉积物全球生物地球化学海洋总循环模型(HAMOCC),对海洋硅循环进行了系统的定量评估。将得到的示踪剂分布与全面的海洋硅测量数据库进行比较。通过线性响应模型优化了控制模型世界中Si循环的模型参数。 Si循环参数和Si示踪剂分布之间的功能关系来自一系列针对蛋白石出口生产,通过水柱的通量,孔隙水化学和外部生物地球化学强迫的敏感性实验。进一步定量改进模拟的最重要参数是与深度有关的蛋白石溶解动力学,与生产力有关的蛋白石沉降速度,最大Si吸收速度V_(max)〜(opal)的一般变化以及粘土作为来自大陆风化的硅输入。模拟的硅预算显示出更大的全球出口产量,蛋白石在沉积物表面的沉积率更高,孔隙水硅酸向开放水柱的扩散扩散率更高(如Treguer等人[1995]所估计)。

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