Optimizing the Temperature Sensitivity of the Isoprene Emission Model MEGAN in Different Ecosystems Using a Metropolis-Hastings Markov Chain Monte Carlo Method

IF 3.7 3区 环境科学与生态学 Q2 ENVIRONMENTAL SCIENCES
C. A. DiMaria, D. B. A. Jones, V. Ferracci, A. A. Bloom, H. M. Worden, R. Seco, L. Vettikkat, A. M. Yáñez-Serrano, A. B. Guenther, A. Araujo, A. H. Goldstein, B. Langford, J. Cash, N. R. P. Harris, L. Brown, R. Rinnan, S. Schobesberger, T. Holst, J. E. Mak
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Abstract

Isoprene is a reactive hydrocarbon emitted to the atmosphere in large quantities by terrestrial vegetation. Annual total isoprene emissions exceed 300 Tg a−1, but emission rates vary widely among plant species and are sensitive to meteorological and environmental conditions including temperature, sunlight, and soil moisture. Due to its high reactivity, isoprene has a large impact on air quality and climate pollutants such as ozone and aerosols. It is also an important sink for the hydroxyl radical which impacts the lifetime of the important greenhouse gas methane along with many other trace gas species. Modeling the impacts of isoprene emissions on atmospheric chemistry and climate requires accurate isoprene emission estimates. These can be obtained using the empirical Model of Emissions of Gases and Aerosols from Nature (MEGAN), but the parameterization of this model is uncertain due in part to limited field observations. In this study, we use ground-based measurements of isoprene concentrations and fluxes from 11 field sites to assess the variability of the isoprene emission temperature response across ecosystems. We then use these observations in a Metropolis-Hastings Markov Chain Monte Carlo (MHMCMC) data assimilation framework to optimize the MEGAN temperature response function. We find that the performance of MEGAN can be significantly improved at several high-latitude field sites by increasing the modeled sensitivity of isoprene emissions to past temperatures. At some sites, the optimized model was nearly four times more sensitive to temperature than the unoptimized model. This has implications for air quality modeling in a warming climate.

利用Metropolis-Hastings马尔可夫链蒙特卡罗方法优化异戊二烯排放模型MEGAN在不同生态系统中的温度敏感性
异戊二烯是一种由陆地植被向大气中大量排放的活性烃。异戊二烯的年总排放量超过300 Tg a−1,但不同植物的排放量差异很大,并且对温度、阳光和土壤湿度等气象和环境条件很敏感。由于其高反应性,异戊二烯对空气质量和气候污染物(如臭氧和气溶胶)有很大影响。它也是影响重要温室气体甲烷和许多其他微量气体寿命的羟基自由基的重要汇。模拟异戊二烯排放对大气化学和气候的影响需要精确的异戊二烯排放估算。这些数据可以使用自然气体和气溶胶排放的经验模型(MEGAN)获得,但该模型的参数化是不确定的,部分原因是现场观测有限。在这项研究中,我们使用来自11个野外站点的异戊二烯浓度和通量的地面测量来评估跨生态系统的异戊二烯排放温度响应的变异性。然后,我们利用这些观测结果在Metropolis-Hastings Markov Chain Monte Carlo (MHMCMC)数据同化框架中优化MEGAN温度响应函数。我们发现,通过增加异戊二烯排放对过去温度的模拟敏感性,MEGAN的性能可以在几个高纬度野外站点得到显著改善。在一些地点,优化后的模型对温度的敏感性是未优化模型的近4倍。这对气候变暖下的空气质量建模具有启示意义。
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来源期刊
Journal of Geophysical Research: Biogeosciences
Journal of Geophysical Research: Biogeosciences Earth and Planetary Sciences-Paleontology
CiteScore
6.60
自引率
5.40%
发文量
242
期刊介绍: JGR-Biogeosciences focuses on biogeosciences of the Earth system in the past, present, and future and the extension of this research to planetary studies. The emerging field of biogeosciences spans the intellectual interface between biology and the geosciences and attempts to understand the functions of the Earth system across multiple spatial and temporal scales. Studies in biogeosciences may use multiple lines of evidence drawn from diverse fields to gain a holistic understanding of terrestrial, freshwater, and marine ecosystems and extreme environments. Specific topics within the scope of the section include process-based theoretical, experimental, and field studies of biogeochemistry, biogeophysics, atmosphere-, land-, and ocean-ecosystem interactions, biomineralization, life in extreme environments, astrobiology, microbial processes, geomicrobiology, and evolutionary geobiology
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