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首页> 外文期刊>Annals of Glaciology >Spring sea-ice evolution in Rijpfjorden (808 N), Svalbard, from in situ measurements and ice mass-balance buoy (IMB) data
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Spring sea-ice evolution in Rijpfjorden (808 N), Svalbard, from in situ measurements and ice mass-balance buoy (IMB) data

机译:斯瓦尔巴特群岛Rijpfjorden(808 N)的春季海冰演变,来自原位测量和冰质平衡浮标(IMB)数据

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Rijpfjorden (80? N, 22? E) is a high-Arctic fjord on Nordaustlandet in the Svalbard archipelago. To monitor the thermodynamic change of sea ice in spring, an ice mass-balance buoy (IMB) was deployed for 2.5 months (10 April–26 June 2011), with accompanying in situ measurements, sea-ice sampling on three occasions and ice-core analysis. Uncertainties and sources of error in in situ measurements and IMB data are discussed. The in situ measurements, ice-core analysis and IMB data together depict the development of snow and ice in spring. Snow and ice thickness exhibited large spatial and temporal variability. After relatively stable conditions with only little change in ice thickness and accumulation of snow, a layer of superimposed ice ~0.06m thick formed at the snow–ice interface due to refreezing of snow meltwater in late spring. Ice thickness (except for growth of superimposed ice) did not change significantly based on in situ observations. In contrast, the under-ice sonar data from the IMB show reflections from a layer deeper than the underside of the ice during the melting phase. This can be explained as a reflection of the sonar pulses from an interface between a freshwater layer under the ice and more saline water below, or as a false-bottom formation.
机译:Rijpfjorden(80?N,22?E)是斯瓦尔巴群岛的Nordaustlandet上的高北极峡湾。为了监测春季海冰的热力学变化,部署了一个冰质平衡浮标(IMB)2.5个月(2011年4月10日至6月26日),并进行了现场测量,三次海冰采样以及核心分析。讨论了现场测量和IMB数据的不确定性和误差来源。现场测量,冰芯分析和IMB数据一起描绘了春季冰雪的发展。冰雪厚度显示出较大的时空变化。在相对稳定的条件下,冰的厚度和积雪几乎没有变化,由于晚春融雪融化的水,在冰冰界面处形成了约0.06m厚的叠加冰层。根据原位观察,冰厚(叠加冰的生长除外)没有显着变化。相比之下,来自IMB的冰下声纳数据显示出在融化阶段来自比冰底更深的层的反射。这可以解释为来自冰下的淡水层和下方的更多盐水之间的界面的声纳脉冲的反射,或者是假底的形成。

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