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首页> 外文期刊>Atmospheric chemistry and physics >Impacts of Mt?Pinatubo volcanic aerosol on the tropical stratosphere in chemistry–climate model simulations using CCMI and CMIP6 stratospheric aerosol data
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Impacts of Mt?Pinatubo volcanic aerosol on the tropical stratosphere in chemistry–climate model simulations using CCMI and CMIP6 stratospheric aerosol data

机译:使用CCMI和CMIP6平流层气溶胶数据进行化学-气候模型模拟时,皮纳图博火山火山气溶胶对热带平流层的影响

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摘要

To simulate the impacts of volcanic eruptions on the stratosphere, chemistry–climate models that do not include an online aerosol module require temporally and spatially resolved aerosol size parameters for heterogeneous chemistry and aerosol radiative properties as a function of wavelength. For phase?1 of the Chemistry-Climate Model Initiative (CCMI-1) and, later, for phase?6 of the Coupled Model Intercomparison Project (CMIP6) two such stratospheric aerosol data sets were compiled, whose functional capability and representativeness are compared here. For CCMI-1, the qSAGE-4iλ/i/q data set was compiled, which hinges on the measurements at four wavelengths of the SAGE (Stratospheric Aerosol and Gas Experiment) II satellite instrument and uses ground-based lidar measurements for gap-filling immediately after the 1991 Mt?Pinatubo eruption, when the stratosphere was too optically opaque for SAGE II. For CMIP6, the new qSAGE-3iλ/i/q data set was compiled, which excludes the least reliable SAGE II wavelength and uses measurements from CLAES (Cryogenic Limb Array Etalon Spectrometer) on UARS, the Upper Atmosphere Research Satellite, for gap-filling following the Mt?Pinatubo eruption instead of ground-based lidars. Here, we performed SOCOLv3 (Solar Climate Ozone Links version?3) chemistry–climate model simulations of the recent past (1986–2005) to investigate the impact of the Mt?Pinatubo eruption in 1991 on stratospheric temperature and ozone and how this response differs depending on which aerosol data set is applied. The use of SAGE-4iλ/i results in heating and ozone loss being overestimated in the tropical lower stratosphere compared to observations in the post-eruption period by approximately 3?K and 0.2?ppmv, respectively. However, less heating occurs in the model simulations based on SAGE-3iλ/i, because the improved gap-filling procedures after the eruption lead to less aerosol loading in the tropical lower stratosphere. As a result, simulated tropical temperature anomalies in the model simulations based on SAGE-3iλ/i for CMIP6 are in excellent agreement with MERRA and ERA-Interim reanalyses in the post-eruption period. Less heating in the simulations with SAGE-3iλ/i means that the rate of tropical upwelling does not strengthen as much as it does in the simulations with SAGE-4iλ/i, which limits dynamical uplift of ozone and therefore provides more time for ozone to accumulate in tropical mid-stratospheric air. Ozone loss following the Mt?Pinatubo eruption is overestimated by up to 0.1?ppmv in the model simulations based on SAGE-3iλ/i, which is a better agreement with observations than in the simulations based on SAGE-4iλ/i. Overall, the CMIP6 stratospheric aerosol data set, SAGE-3iλ/i, allows SOCOLv3 to more accurately simulate the post-Pinatubo eruption period.
机译:为了模拟火山喷发对平流层的影响,不包含在线气溶胶模块的化学气候模型要求在时间和空间上解析气溶胶尺寸参数,以实现异质化学和气溶胶辐射特性随波长的变化。对于化学-气候模式倡议(CCMI-1)的第1阶段,以及后来的耦合模型比较项目(CMIP6)的第6阶段,编制了两个这样的平流层气溶胶数据集,此处对它们的功能能力和代表性进行了比较。 。对于CCMI-1,汇编了 SAGE-4 λ 数据集,该数据集取决于SAGE(对流层气溶胶和气体实验)II卫星仪器在四个波长处的测量结果。并在1991年皮纳图博火山喷发后立即使用地面激光雷达测量间隙,当时平流层对SAGE II来说在光学上太不透明了。对于CMIP6,编译了新的 SAGE-3 λ 数据集,该数据集排除了最不可靠的SAGE II波长,并使用了UARS上的CLAES(低温肢体阵列标准具光谱仪)进行测量,上层大气研究卫星,用于填补皮纳图博火山爆发之后的空缺,而不是地面激光雷达。在这里,我们进行了SOCOLv3(太阳能臭氧连接版本3)最近的化学-气候模型模拟(1986-2005年),以研究1991年皮纳图博火山喷发对平流层温度和臭氧的影响以及这种响应如何不同取决于应用的气溶胶数据集。与喷发后时期的观测值相比,使用SAGE-4 λ导致热带低平流层的加热和臭氧损失被高估了,分别约为3?K和0.2?ppmv。但是,在基于SAGE-3 λ的模型模拟中发生的热量较少,这是因为喷发后改进的气隙填充程序导致了热带低平流层中较少的气溶胶负荷。结果,在CMIP6的基于SAGE-3 λ的模型模拟中的模拟热带温度异常与喷发后时期的MERRA和ERA-Interim重新分析非常吻合。用SAGE-3 λ进行的模拟中的加热较少,这意味着热带上升的速率不如使用SAGE-4 λ的模拟中增强的速度快。臭氧的动态上升,因此为热带平流层中层空气中的臭氧积累提供了更多时间。在基于SAGE-3 λ的模型模拟中,皮纳图博火山喷发后的臭氧损失被高估了0.1?ppmv,这与基于SAGE-4的模拟中的观测结果更好地吻合λ。总体而言,CMIP6平流层气溶胶数据集SAGE-3 λ使SOCOLv3更准确地模拟了皮纳图博火山爆发后的时期。

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