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Possible effects of galactic cosmic ray flux and low-cloud amounts on global surface temperature

机译:银河宇宙射线通量和低云量对全局表面温度的可能影响

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The solar variations, solara??climate interactions, and the mechanisms controlling the response of Eartha??s climate system are important to understand the effect of solar variability on climate change. The solar magnetic field is directly/indirectly disturbing the interplanetary space, the ionosphere, the magnetosphere, and even the atmosphere. To investigate the contribution of varying galactic cosmic flux, the role of sunspot number (Rz), galactic cosmic ray (GCR) rates, cloud condensation nuclei (CCN), total solar irradiance (TSI), $m{CO}_{2}$ concentration and the global surface temperature (GST) is examined. The variations of TSI can partially explain the global increase in temperature, and it accounts for about $0.5^{0}m{C}$ warming experienced from 1950 to 2016. Therefore, the future predictions of global warming should take into account the effects due to long-term changes in the galactic CRs, the low-level cloud condensation (LLC), etc. The concentrations of $m{CO}_{2}$ increased in the upper atmosphere by 19% during the last 65 years. A strong correlation between LLC and GST suggests a linear relationship between these parameters. These observations are suggestive of the possible role of GCRs in global climate.
机译:太阳能变化,Solara ??气候互动,以及控制地球气候系统响应的机制对于了解太阳能变异对气候变化的影响非常重要。太阳磁场直接/间接地扰乱行星际空间,电离层,磁层,甚至气氛。为了调查不同银河宇宙助焊剂的贡献,Sunspot数(RZ),银河宇宙射线(GCR)率,云凝结核(CCN),总太阳辐照度(TSI),$ RM {CO} _ {2 } $浓度和全局表面温度(GST)被检查。 TSI的变化可以部分解释温度的全球增加,它从1950年到2016年签订了约0.5美元的价格。因此,对全球变暖的未来预测应该考虑到效果由于银河CRS的长期变化,低级云凝结(LLC)等。在过去的65年期间,在高层大气中增加了$ rm {co} _ {2}美元的浓度增加了19% 。 LLC和GST之间的强烈相关性建议这些参数之间的线性关系。这些观察结果旨在提示GCR在全球气候中的可能作用。

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