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A simple framework for modelling the photochemical response to solar spectral irradiance variability in the stratosphere

机译:一种简单的框架,用于对平流层中太阳光谱辐照度变异性建模的光化学响应

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The stratosphere is thought to play a central role in the atmospheric response to solar irradiance variability. Recent observations suggest that the spectral solar irradiance (SSI) variability involves significant time-dependent spectral variations, with variable degrees of correlation between wavelengths, and new reconstructions are being developed. In this paper, we propose a simplified modelling framework to characterise the effect of short term SSI variability on stratospheric ozone. We focus on the pure photochemical effect, for it is the best constrained one. The photochemical effect is characterised using an ensemble simulation approach with multiple linear regression analysis. A photochemical column model is used with interactive photolysis for this purpose. Regression models and their coefficients provide a characterisation of the stratospheric ozone response to SSI variability and will allow future inter-comparisons between different SSI reconstructions. As a first step in this study, and to allow comparison with past studies, we take the representation of SSI variability from the Lean (1997) solar minimum and maximum spectra. First, solar maximum-minimum response is analysed for all chemical families and partitioning ratios, and is compared with past studies. The ozone response peaks at 0.18 ppmv (approximately 3%) at 37 km altitude. Second, ensemble simulations are regressed following two linear models. In the simplest case, an adjusted coefficient of determination R2 larger than 0.97 is found throughout the stratosphere using two predictors, namely the previous day's ozone perturbation and the current day's solar irradiance perturbation. A better accuracy (R2 larger than 0.9992) is achieved with an additional predictor, the previous day's solar irradiance perturbation. The regression models also provide simple parameterisations of the ozone perturbation due to SSI variability. Their skills as proxy models are evaluated independently against the photochemistry column model. The bias and RMS error of the best regression model are found smaller than 1% and 15% of the ozone response, respectively. Sensitivities to initial conditions and to magnitude of the SSI variability are also discussed.
机译:平流层被认为在对太阳辐照度变异性的大气反应中发挥着核心作用。最近的观察结果表明,光谱太阳辐照度(SSI)可变性涉及具有显着的时间依赖性光谱变化,波长之间的可变程度的相关性,并且正在开发新的重建。在本文中,我们提出了一种简化的建模框架,以表征短期SSI变异性对平流层臭氧的影响。我们专注于纯粹的光化学效果,因为它是最好的约束。光化学效果使用具有多元线性回归分析的集合仿真方法来表征。为此目的,光化学柱模型用于交互式光解。回归模型及其系数提供对SSI变异性的平流层臭氧响应的表征,并且将允许不同SSI重建之间的未来比较。作为本研究的第一步,并允许与过去的研究进行比较,我们从精益(1997)太阳能最小和最大光谱中获得SSI变异性的表示。首先,针对所有化学家族和分区比率分析太阳最大最小响应,并与过去的研究进行比较。臭氧响应峰值在37公里处的0.18 ppmV(约3%)。其次,在两个线性模型之后,集合模拟是回归的。在最简单的情况下,使用两个预测器在整个平流层中发现了大于0.97的调整后的确定系数R2,即前一天的臭氧扰动和当天的太阳辐照度扰动。通过额外的预测器,前一天的太阳辐照度扰动,实现了更好的精度(R2大于0.9992)。回归模型还通过SSI可变性提供臭氧扰动的简单参数。作为代理模型的技能是独立于光化学柱模型进行评估的。最佳回归模型的偏差和rms误差分别小于1%和15%的臭氧响应。还讨论了初始条件和SSI变异性的幅度的敏感性。

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