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挑战陆架坡折带孤立海底峡谷高位静止期的传统观念。

Challenging the highstand-dormant paradigm for land-detached submarine canyons.

机构信息

National Oceanography Centre, European Way, Southampton, UK.

Department of Ocean Systems, Royal Netherlands Institute for Sea Research (NIOZ-Texel), Den Burg, The Netherlands.

出版信息

Nat Commun. 2022 Jun 15;13(1):3448. doi: 10.1038/s41467-022-31114-9.

Abstract

Sediment, nutrients, organic carbon and pollutants are funnelled down submarine canyons from continental shelves by sediment-laden flows called turbidity currents, which dominate particulate transfer to the deep sea. Post-glacial sea-level rise disconnected more than three quarters of the >9000 submarine canyons worldwide from their former river or long-shore drift sediment inputs. Existing models therefore assume that land-detached submarine canyons are dormant in the present-day; however, monitoring has focused on land-attached canyons and this paradigm remains untested. Here we present the most detailed field measurements yet of turbidity currents within a land-detached submarine canyon, documenting a remarkably similar frequency (6 yr) and speed (up to 5-8 ms) to those in large land-attached submarine canyons. Major triggers such as storms or earthquakes are not required; instead, seasonal variations in cross-shelf sediment transport explain temporal-clustering of flows, and why the storm season is surprisingly absent of turbidity currents. As >1000 other canyons have a similar configuration, we propose that contemporary deep-sea particulate transport via such land-detached canyons may have been dramatically under-estimated.

摘要

沉积物、营养物质、有机碳和污染物通过称为浊流的富含沉积物的水流从大陆架向下输送到海底峡谷,浊流主导着颗粒物质向深海的转移。冰期后海平面上升,使全球超过 9000 个海底峡谷中有四分之三以上与其以前的河流或沿岸漂移沉积物输入失去了联系。因此,现有模型假设目前与陆地分离的海底峡谷处于休眠状态;然而,监测主要集中在与陆地相连的峡谷上,这一范式尚未得到验证。在这里,我们首次对陆地分离的海底峡谷内的浊流进行了最详细的现场测量,记录到的浊流频率(6 年)和速度(高达 5-8 m/s)与大型与陆地相连的海底峡谷非常相似。不需要像风暴或地震这样的主要触发因素;相反,跨架沉积物输送的季节性变化解释了水流的时间聚类,以及为什么风暴季节出奇地没有浊流。由于有 1000 多个其他峡谷具有类似的构造,我们提出,通过这种与陆地分离的峡谷进行的当代深海颗粒物质输送可能被大大低估了。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/866f/9200776/d7a8dd514013/41467_2022_31114_Fig1_HTML.jpg

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