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首页> 外文期刊>Earth Surface Processes and Landforms: The journal of the British Geomorphological Research Group >Quantifying periglacial erosion: insights on a glacial sediment budget, Matanuska Glacier, Alaska
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Quantifying periglacial erosion: insights on a glacial sediment budget, Matanuska Glacier, Alaska

机译:量化冰川侵蚀:对冰川沉积物预算的见解,阿拉斯加的马塔努斯卡冰川

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摘要

Glacial erosion rates are estimated to be among the highest in the world. Few studies have attempted, however, to quantify the flux of sediment from the periglacial landscape to a glacier. Here, erosion rates from the nonglacial landscape above the Matanuska Glacier, Alaska are presented and compare with an 8-yr record of proglacial suspended sediment yield. Non-glacial lowering rates range from 1.8 +/- 0.5 mm yr(-1) to 8.5 +/- 3.4 mm yr(-1) from estimates of rock fall and debris-flow fan volumes. An average erosion rate of 0.08 +/- 0.04 mm yr(-1) from eight convex-up ridge crests was determined using in situ produced cosmogenic Be-10. Extrapolating these rates, based on landscape morphometry, to the Matanuska basin (58% ice-cover), it was found that nonglacial processes account for an annual sediment flux of 2.3 +/- 1.0 x 10(6) t. Suspended sediment data for 8 years and an assumed bedload to estimate the annual sediment yield at the Matanuska terminus to be 2.9 +/- 1.0 x 10(6) t, corresponding to an erosion rate of 1.8 +/- 0.6 mm yr(-1): nonglacial Sources therefore account for 80 +/- 45% of the proglacial yield. A similar set of analyses were used for a small tributary sub-basin (32%) ice-cover) to determine an erosion rate of 12.1 +/- 6.9 mm yr(-1), based on proglacial sediment yield, with the nonglacial sediment flux equal to 10 +/- 7% of the proglacial yield. It is suggested that erosion rates by nonglacial processes are similar to inferred subglacial rates, Such that the ice-free regions of a glaciated landscape contribute significantly to the glacial sediment budget. The similar magnitude of nonglacial and glacial rates implies that partially glaciated landscapes will respond rapidly to changes in climate and base level through a rapid nonglacial response to glacially driven incision.
机译:据估计,冰川侵蚀率是世界上最高的。然而,很少有研究试图量化沉积物从冰川周围景观到冰川的通量。在这里,展示了阿拉斯加马塔努斯卡冰川上空非冰川景观的侵蚀速率,并与8年记录的冰川期悬浮沉积物产量进行了比较。根据落石量和泥石流风机的体积估算,非冰川下降速率的范围从1.8 +/- 0.5 mm yr(-1)到8.5 +/- 3.4 mm yr(-1)。使用原位产生的宇宙成因的Be-10,确定了八个凸脊顶的平均侵蚀速率为0.08 +/- 0.04 mm yr(-1)。根据景观形态学将这些速率推算到马塔努斯卡盆地(58%的冰盖)上,发现非冰川过程占2.3 +/- 1.0 x 10(6)t的年沉积通量。悬浮的8年泥沙数据和假定的泥沙量估计Matanuska总站的年度泥沙产量为2.9 +/- 1.0 x 10(6)t,对应于1.8 +/- 0.6 mm yr(-1)的侵蚀速率):因此,非冰河来源占冰河产量的80 +/- 45%。对小型支流次流域(32%)的冰盖使用了类似的分析方法,以基于冰川沉积物的产量和非冰川沉积物的侵蚀速率确定为12.1 +/- 6.9 mm yr(-1)。通量等于冰激凌产量的10 +/- 7%。有人认为,非冰川过程的侵蚀速率与推断的冰川下速率相似,因此冰川景观的无冰区对冰川沉积物的预算有很大贡献。非冰川和冰川速度的幅度相似,这意味着部分冰川景观将通过对冰川驱动的切口的快速非冰川响应而对气候和基础水平的变化做出快速响应。

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