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Ice sheets and nitrogen

机译:冰盖和氮气

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摘要

Snow and ice play their most important role in the nitrogen cycle as a barrier to land–atmosphere and ocean–atmosphere exchanges that would otherwise occur. The inventory of nitrogen compounds in the polar ice sheets is approximately 260 Tg N, dominated by nitrate in the much larger Antarctic ice sheet. Ice cores help to inform us about the natural variability of the nitrogen cycle at global and regional scale, and about the extent of disturbance in recent decades. Nitrous oxide concentrations have risen about 20 per cent in the last 200 years and are now almost certainly higher than at any time in the last 800 000 years. Nitrate concentrations recorded in Greenland ice rose by a factor of 2–3, particularly between the 1950s and 1980s, reflecting a major change in NOx emissions reaching the background atmosphere. Increases in ice cores drilled at lower latitudes can be used to validate or constrain regional emission inventories. Background ammonium concentrations in Greenland ice show no significant recent trend, although the record is very noisy, being dominated by spikes of input from biomass burning events. Neither nitrate nor ammonium shows significant recent trends in Antarctica, although their natural variations are of biogeochemical and atmospheric chemical interest. Finally, it has been found that photolysis of nitrate in the snowpack leads to significant re-emissions of NOx that can strongly impact the regional atmosphere in snow-covered areas.
机译:雪和冰在氮循环中起着最重要的作用,它是原本会发生的陆地-大气和海洋-大气交换的障碍。极地冰原中氮化合物的总量约为260 Tg N,主要由南极冰原中的硝酸盐决定。冰芯帮助我们了解全球和区域范围内氮循环的自然变异性,以及近几十年来的扰动程度。在过去200年中,一氧化二氮的浓度增加了约20%,现在几乎可以肯定地比过去80万年来的任何时候都高。格陵兰岛冰上记录的硝酸盐浓度上升了2-3倍,特别是在1950年代至1980年代之间,反映了到达背景大气的NOx排放量发生了重大变化。在较低纬度处钻取的冰芯的增加可用于验证或限制区域排放清单。尽管记录非常嘈杂,但格陵兰岛冰中背景铵的浓度没有显示出明显的近期趋势,主要是来自生物质燃烧事件的输入峰值。尽管硝酸盐和铵盐的自然变化具有生物地球化学和大气化学意义,但它们在南极洲均未显示出明显的近期趋势。最后,已经发现雪堆中硝酸盐的光解会导致NOx的大量再排放,这会严重影响积雪地区的区域大气。

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