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The "tipping" temperature within Subglacial Lake Ellsworth, West Antarctica and its implications for lake access

机译:西南极洲埃尔斯沃斯冰川下的“倾倒”温度及其对湖泊通行的影响

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We present results from new geophysical data allowing modelling of the water flow within Subglacial Lake Ellsworth (SLE), West Antarctica. Our simulations indicate that this lake has a novel temperature distribution due to significantly thinner ice than other surveyed subglacial lakes. The critical pressure boundary (tipping depth), established from the semi-empirical Equation of State, defines whether the lake's flow regime is convective or stratified. It passes through SLE and separates different temperature (and flow) regimes on either side of the lake. brbr Our results have implications for the location of proposed access holes into SLE, the choice of which will depend on scientific or operational priorities. If an understanding of subglacial lake water properties and dynamics is the priority, holes are required in a basal freezing area at the North end of the lake. This would be the preferred priority suggested by this paper, requiring temperature and salinity profiles in the water column. A location near the Southern end, where bottom currents are lowest, is optimum for detecting the record of life in the bed sediments; to minimise operational risk and maximise the time span of a bed sediment core, a location close to the middle of the lake, where the basal interface is melting and the lake bed is at its deepest, remains the best choice. Considering potential lake-water salinity and ice-density variations, we estimate the critical tipping depth, separating different temperature regimes within subglacial lakes, to be in about 2900 to 3045 m depth.
机译:我们提供了来自新地球物理数据的结果,该数据允许对南极西部冰河湖Ellsworth(SLE)内的水流进行建模。我们的模拟表明,由于冰比其他被调查的冰下湖明显薄得多,因此该湖具有新颖的温度分布。根据半经验状态方程建立的临界压力边界(倾覆深度)定义了湖泊的流态是对流的还是分层的。它通过SLE,并在湖的两侧分隔不同的温度(和流量)状态。 我们的结果对SLE中拟议的检修孔的位置具有影响,其选择将取决于科学或操作优先级。如果要优先了解冰川湖以下的水的性质和动力学,则必须在湖北端的基础冰冻区打洞。这将是本文建议的优先事项,要求在水柱中具有温度和盐度曲线。在南端附近,底部电流最低的位置,对于检测床底沉积物的生命记录是最佳的;为了最大程度地降低操作风险并最大程度地延长床底沉积物芯的时间跨度,仍然是最佳选择,该位置靠近湖泊中部,底部界面正在融化,湖床最深。考虑到潜在的湖水盐度和冰密度变化,我们估算临界冰期深度,将冰湖中不同的温度范围分开,约为2900至3045 m。

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