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The 41 kyr world: Milankovitch's other unsolved mystery

机译:41岁的世界:米兰科维奇的另一个未解之谜

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摘要

For most of the Northern Hemisphere Ice Ages, from ~3.0 to 0.8 m.y., global ice volume varied predominantly at the 41,000 year period of Earth's orbital obliquity. However, summer (or summer caloric half year) insolation at high latitudes, which is widely believed to be the major influence on high-latitude climate and ice volume, is dominated by the 23,000 year precessional period. Thus the geologic record poses a challenge to our understanding of climate dynamics. Here we propose that variations in the insolation gradient between high and low latitudes control high-latitude climate and ice volume during the late Pliocene and early Pleistocene. The differential heating between high and low latitudes, driven by obliquity, controls the atmospheric meridional flux of heat, moisture, and latent energy, which may exert the dominant control on high-latitude climate on Milankovitch timescales. In the two-dimensional zonal energy balance models typically used to study the long-term evolution of climate, the meridional atmospheric moisture flux is usually kept fixed. The hypothesis that insolation gradients control the poleward energy fluxes, precipitation, and ice volume at high latitudes has never been directly examined within the context of an ice sheet model. In light of what we known about modern energy fluxes and their relative influence on high-latitude climate, this possibility should be examined.
机译:对于北半球的大部分冰期,从约3.0至0.8 m.y.,全球冰量主要在地球轨道倾角41,000年期间变化。但是,高纬度的夏季(或夏季热量的半年)日照被普遍认为是对高纬度气候和冰量的主要影响,而这一年是23,000年的进动时期。因此,地质记录对我们对气候动力学的理解提出了挑战。在这里,我们建议在上新世晚期和早更新世之间,高纬度和低纬度之间的日射梯度变化控制高纬度气候和冰量。由倾角驱动的高纬和低纬之间的差异加热控制了大气的子午通量的热量,水分和潜能,这可能在Milankovitch时标上对高纬度气候起主导作用。在通常用于研究气候长期演变的二维区域能源平衡模型中,子午空气湿度通量通常保持固定。在高冰纬度地区,日射梯度控制极向能量通量,降水和冰量的假设从未在冰盖模型的上下文中直接得到检验。根据我们对现代能量通量及其对高纬度气候的相对影响的了解,应该检查这种可能性。

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