首页> 外文期刊>Earth Surface Processes and Landforms: The journal of the British Geomorphological Research Group >Coupling chemical weathering with soil production across soil-mantled landscapes
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Coupling chemical weathering with soil production across soil-mantled landscapes

机译:将化学风化与土壤覆盖景观中的土壤产量耦合

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摘要

Soil-covered upland landscapes constitute a critical part of the habitable world. Our understanding of how they evolve as a function of different climatic, tectonic and geological regimes is important across a wide range of disciplines and depends, in part, on understanding the links between chemical and physical weathering processes. Extensive previous work has shown that soil production rates decrease with increasing soil column thickness, but chemical weathering rates were not measured. Here we examine a granitic, soil-mantled hillslope at Point Reyes, California, where soil production rates were determined using in situ produced cosmogenic nuclides (10Be and 26Al), and we quantify the extent as well as the rates of chemical weathering of the saprolite from beneath soil from across the landscape. We collected saprolite samples from the base of soil pits and analysed them for abrasion pH as well as for major and trace elements by X-ray fluorescence spectroscopy, and for clay mineralogy by X-ray diffraction spectroscopy. Our results show for the first time that chemical weathering rates decrease with increasing soil thickness and account for 13 to 51 per cent of total denudation. We also show that spatial variation in chemical weathering appears to be topographically controlled: weathering rate decreases with slope across the divergent ridge and increases with upslope contributing area in the convergent swale. Furthermore, to determine the best measure for the extent of saprolite weathering, we compared four different chemical weathering indices - the Vogt ratio, the chemical index of alteration (CIA), Parker's index, and the silicon-aluminium ratio - with saprolite pH. Measurements of the CIA were the most closely correlated with saprolite pH, showing that weathering intensity decreases linearly with an increase in saprolite pH from 4? to almost 7. Data presented here are among the first to couple directly rates of soil production and chemical weathering with how topography is likely to control weathering at a hillslope scale. Copyright ? 2006 John Wiley & Sons, Ltd.
机译:被土壤覆盖的山地景观构成了宜居世界的重要组成部分。我们对它们如何根据不同的气候,构造和地质状况演化的理解在许多学科中都很重要,并且部分取决于对化学和物理风化过程之间联系的了解。先前的大量研究表明,土壤生产率随着土壤柱厚度的增加而降低,但未测量化学风化率。在这里,我们检查了位于加利福尼亚雷耶斯角的花岗岩,土壤覆盖的山坡,在该处使用原位产生的宇宙成因核素(10Be和26Al)确定土壤生产率,并量化了腐泥土的程度和化学风化率从土壤中穿越景观。我们从土坑底部收集了腐泥土样品,并通过X射线荧光光谱分析了它们的磨损pH值以及主要和微量元素,并通过X射线衍射光谱分析了它们的粘土矿物学。我们的结果首次表明,化学风化率随土壤厚度的增加而降低,占总剥蚀量的13%至51%。我们还表明,化学风化的空间变化似乎在地形上受到控制:风化速率随发散脊上的坡度降低而随汇聚大浪中上坡贡献面积的增加而增加。此外,为了确定腐泥土风化程度的最佳测量方法,我们比较了四种不同的化学风化指数-Vogt比,化学变化指数(CIA),Parker指数和硅铝比-与腐泥土pH值。 CIA的测量值与腐泥土的pH值关系最密切,表明风化强度随腐泥土pH值的增加(从4?大约7。这里提供的数据是第一个直接将土壤生产率和化学风化率与地形如何控制山坡规模的风化联系起来的数据。版权? 2006年John Wiley&Sons,Ltd.

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