风化土
风化作用
地质学
镁铁质
长英质
长石
地球化学
黑云母
矿物
混流
太空风化
矿物学
石英
天体生物学
小行星
地下水
岩土工程
材料科学
古生物学
冶金
物理
作者
Ekaterina Bazilevskaya,Marina I. Lebedeva,Milan J. Pavich,Gernot Rother,Dilworth Y. Parkinson,David R. Cole,Susan L. Brantley
摘要
ABSTRACT Weathering disaggregates rock into regolith – the fractured or granular earth material that sustains life on the continental land surface. Here, we investigate what controls the depth of regolith formed on ridges of two rock compositions with similar initial porosities in Virginia (USA). A priori , we predicted that the regolith on diabase would be thicker than on granite because the dominant mineral (feldspar) in the diabase weathers faster than its granitic counterpart. However, weathering advanced 20× deeper into the granite than the diabase. The 20 × ‐thicker regolith is attributed mainly to connected micron‐sized pores, microfractures formed around oxidizing biotite at 20 m depth, and the lower iron (Fe) content in the felsic rock. Such porosity allows pervasive advection and deep oxidation in the granite. These observations may explain why regolith worldwide is thicker on felsic compared to mafic rock under similar conditions. To understand regolith formation will require better understanding of such deep oxidation reactions and how they impact fluid flow during weathering. Copyright © 2012 John Wiley & Sons, Ltd.
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