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Multi-decadal reduction in glacier velocities and mechanisms driving deceleration at polythermal White Glacier, Arctic Canada

机译:冰川速度和机制驾驶减速,北极加拿大驾驶减速

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摘要

Annual and seasonal surface velocities measured continuously from 1960 to 1970 at White Glacier, a 14 km long polythermal valley glacier spanning similar to 100-1800 m a.s.l., provide the most comprehensive early record of ice dynamics in the Canadian Arctic. Through comparison with differential GPS-derived velocity data spanning 2012-16, we find reductions in mean annual velocity by 31 and 38% at lower elevations (600 and 400 m a.s.l.). These are associated with decreased internal ice deformation due to ice thinning and reduced basal motion likely due to increased hydraulic efficiency in recent years. At higher elevation (similar to 850 m a.s.l.) there is no detectable change in annual velocity and the expected decrease in internal deformation rates due to ice thinning is offset by increased basal motion in both summer and winter, likely attributable to supraglacial melt accessing a still inefficient subglacial drainage system. Decreases in mass flux at lower elevations since the 1960s cannot explain the observed elevation loss of similar to 20 m, meaning that ice thinning along the glacier trunk is primarily a function of downwasting rather than changing ice dynamics. The current response of the glacier exemplifies steady thinning, velocity slowdown and upstreamretreat of the ELA but, because the glacier has an unstable geometry with considerable mass in the 1300-1500 m elevation range, a retreat of the ELA to >1300 plausible within 25-40 years, could trigger runaway wastage.
机译:从1960年到1970年,在怀特冰川(White Glacier)连续测量的年和季节表面速度,为加拿大北极冰动力学提供了最全面的早期记录。White Glacier是一座14公里长的多热河谷冰川,跨度约为100-1800米a.s.l。通过与2012年至2016年的差分GPS速度数据进行比较,我们发现在较低海拔(600和400 m a.s.l.)下,年平均速度分别降低了31%和38%。这与冰变薄导致的内部冰变形减少以及近年来水力效率提高导致的基底运动减少有关。在较高海拔(类似于850 m a.s.l.)下,年速度没有明显变化,冰变薄导致的内部变形率预期下降被夏季和冬季增加的基底运动所抵消,这可能是由于冰上熔体进入了仍然低效的冰下排水系统。自20世纪60年代以来,低海拔地区的质量通量减少无法解释观测到的类似于20米的海拔损失,这意味着沿冰川主干的冰变薄主要是向下消散的功能,而不是改变冰动力学。冰川的当前响应体现了ELA的稳定减薄、速度放缓和上游温度,但由于冰川的几何结构不稳定,在1300-1500 m的海拔范围内具有相当大的质量,因此在25-40年内,ELA后退到1300以上可能会引发失控损耗。

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