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The impact of volcanic eruptions of different magnitude on stratospheric water vapor in the tropics

机译:不同幅度对热带地流层水蒸气火山喷发的影响

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Increasing the temperature of the tropical cold-point region through heating by volcanic aerosols results in increases in the entry value of stratospheric water vapor (SWV) and subsequent changes in the atmospheric energy budget. We analyze tropical volcanic eruptions of different strengths with sulfur (S) injections ranging from 2.5? Tg ?S up to 40? Tg ?S using EVAens, the 100-member ensemble of the Max Planck Institute – Earth System Model in its low-resolution configuration (MPI-ESM-LR) with artificial volcanic forcing generated by the Easy Volcanic Aerosol (EVA) tool. Significant increases in SWV are found for the mean over all ensemble members from 2.5? Tg ?S onward ranging between [5, 160]? % . However, for single ensemble members, the standard deviation between the control run members (0? Tg ?S) is larger than SWV increase of single ensemble members for eruption strengths up to 20? Tg ?S. A historical simulation using observation-based forcing files of the Mt. Pinatubo eruption, which was estimated to have emitted ( 7.5±2.5 )? Tg ?S, returns SWV increases slightly higher than the 10? Tg ?S EVAens simulations due to differences in the aerosol profile shape. An additional amplification of the tape recorder signal is also apparent, which is not present in the 10? Tg ?S run. These differences underline that it is not only the eruption volume but also the aerosol layer shape and location with respect to the cold point that have to be considered for post-eruption SWV increases. The additional tropical clear-sky SWV forcing for the different eruption strengths amounts to [0.02, 0.65]? W?m ?2 , ranging between [2.5, 4]? % of the aerosol radiative forcing in the 10? Tg ?S scenario. The monthly cold-point temperature increases leading to the SWV increase are not linear with respect to aerosol optical depth (AOD) nor is the corresponding SWV forcing, among others, due to hysteresis effects, seasonal dependencies, aerosol profile heights and feedbacks. However, knowledge of the cold-point temperature increase allows for an estimation of SWV increases of 12? % per Kelvin increase in mean cold-point temperature. For yearly averages, power functions are fitted to the cold-point warming and SWV forcing with increasing AOD.
机译:通过火山气溶胶加热增加热带冷点区域的温度导致平流层水蒸气(SWV)的入口值增加以及大气能量预算的随后变化。我们分析了2.5的硫(S)注射的不同优点的热带火山喷发吗? tg?s最多40?使用Evaens,Max Planck Institute - 地球系统模型的100个成员集合在其低分辨率配置(MPI-ESM-LR)中,具有由易于火山气溶胶(EVA)工具产生的人工火山强迫。从2.5的所有集合成员面临的平均值都发现了SWV的显着增加? TG?在[5,160]之间的上行范围? %。然而,对于单个集合构件,控制运行构件(0≤TG≤S)之间的标准偏差大于单个集合构件的SWV增加,用于喷发强度最多20? tg?s。使用基于观察的UT的历史仿真。Pinatubo Buluption估计已经发出(7.5±2.5)? TG?S,返回SWV增加略高于10?由于气溶胶型材形状的差异,TG?S Evaens模拟。磁带录音机信号的额外放大也是显而易见的,这在10中不存在? tg?s奔跑。这些差异在下划线下,它不仅是喷发体积,而且是气溶胶层形状和相对于必须考虑的冷点的形状和位置,这对于萌出后的SWV增加。额外的热带透明天空SWV强迫不同的喷发强度的量为[0.02,0.65]? w?m?2,在[2.5,4]之间的范围?在10中促使气溶胶辐射的百分比? TG?S情景。导致SWV增加的每月冷点温度增加对于气溶胶光学深度(AOD)而不是线性,而不是相应的SWV迫使,其中包括滞后效应,季节性依赖性,气溶胶型材高度和反馈。然而,对冷点温度的了解允许估计SWV增加12?每kelvin%平均冷点温度增加。对于年平均值,功率功能适用于冷点变暖和SWV强制越来越多的AOD。

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