首页> 外文期刊>Geochimica et Cosmochimica Acta: Journal of the Geochemical Society and the Meteoritical Society >From biological to lithological control of the B geochemical cycle in a forest watershed (Strengbach, Vosges)
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From biological to lithological control of the B geochemical cycle in a forest watershed (Strengbach, Vosges)

机译:森林流域中B地球化学循环的从生物控制到岩性控制(Strengbach,孚日)

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摘要

There is a fast growing interest in understanding the coupling between mineralogical and biological processes responsible for the migration of elements through continental ecosystems. This issue has fundamental impacts at the soil/plant scale because it can explain the tight links between soil and plant development and at the watershed scale because it gives a direct access to the water quality. In the present study, we performed an extended investigation of the bio-geochemical cycle of boron, which is an element known to be suitable for investigating water/rock interactions and vegetation cycling. New B data are provided along the hydro-bio-geochemical continuum in a forest ecosystem (Strengbach basin, Vosges, France), from rainwaters down to the outlet of the basin including systematic analyses of throughfalls, soil solutions, springs and brooks scattered in the watershed. At the watershed scale, we evidence a relationship between the B isotopic composition of river waters and the weathering regime outlining a predominant control of the parent rock mineralogy on the B geochemical behavior. At the soil/plant scale, it appears that the B geochemical cycle is controlled by the vegetation cycling, which is characterized by an uncommon, easy to distinguish, B isotopic composition (δ~(11)B ranging from about +30‰ to +45‰). Each year the amount of B being involved in the vegetation cycle is about four times greater than that of B being exported out of the watershed. At 10cm depth in soil, where the plant roots are expected to be the most active, we observe a marked seasonal oscillation of the B isotopic values, which is interpreted as resulting from the vegetation activity. A mass balance calculation based on the assumption that that ~(10)B is preferentially accumulated in the biomass tends to indicate that the soil/plant system does not behave at steady state with respect to B.Because of the very distinct B isotopic signature of vegetation and minerals in soil, box modeling allows to quantify the part of the B fluxes involved in the vegetation cycling and the mineral reactions, respectively. This calculation reveals a clear correlation between the amount of B derived from soil weathering and the amount of B absorbed by plant roots. This result clearly supports the idea that a coupling exists between mineral weathering and plant activity, for the study of which B isotopes appear particularly suitable.
机译:人们越来越了解矿物和生物过程之间的耦合,这些过程负责元素通过大陆生态系统的迁移。该问题对土壤/植物规模具有根本影响,因为它可以解释土壤与植物发育之间的紧密联系,而在流域范围内则可以解释,因为它可以直接获取水质。在本研究中,我们对硼的生物地球化学循环进行了广泛的研究,硼是已知适合于研究水/岩石相互作用和植被循环的元素。从雨水一直到盆地出口,森林生态系统(Strengbach盆地,法国孚日)的水生地球化学连续体都提供了新的B数据,包括对分布在土壤中的通流,土壤溶液,泉水和溪流的系统分析。分水岭。在分水岭尺度上,我们证明了河流水的B同位素组成与风化机制之间的关系,概述了母体岩石矿物学对B地球化学行为的主要控制。在土壤/植物尺度上,B的地球化学循环似乎受植被循环的控制,其特征是B同位素组成不常见且易于区分(δ〜(11)B范围为+ 30‰至+ 45‰)。每年,参与植被循环的硼量大约是从流域输出的硼量的四倍。在土壤的10厘米深度处(预计植物根系最活跃),我们观察到B同位素值的明显季节性波动,这被解释为是由植被活动引起的。基于〜(10)B优先积累在生物质中的假设进行的质量平衡计算倾向于表明土壤/植物系统相对于B不会处于稳态,因为B的非常独特的B同位素特征植被和土壤中的矿物质,箱形模型可以分别量化参与植被循环和矿物质反应的B流量。该计算揭示了土壤风化引起的硼含量与植物根系吸收的硼含量之间存在明显的相关性。该结果清楚地支持了矿物风化与植物活性之间存在耦合的想法,对于研究其中的B同位素似乎特别合适。

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