Global S&T Development Trend Analysis Platform of Resources and Environment
| DOI | 10.1029/2017JD027789 |
| Nighttime Mesospheric/Lower Thermospheric Tropical Ozone Response to the 27-Day Solar Rotational Cycle: ENVISAT-GOMOS Satellite Observation Versus HAMMONIA Idealized Chemistry-Climate Model Simulations | |
| Thieblemont, R.1; Bekki, S.1; Marchand, M.1; Bossay, S.1; Schmidt, H.2; Meftah, M.1; Hauchecorne, A.1 | |
| 2018-08-27 | |
| 发表期刊 | JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES
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| ISSN | 2169-897X |
| EISSN | 2169-8996 |
| 出版年 | 2018 |
| 卷号 | 123期号:16页码:8883-8896 |
| 文章类型 | Article |
| 语种 | 英语 |
| 国家 | France; Germany |
| 英文摘要 | Global Ozone Monitoring by Occultation of Stars (GOMOS) satellite data are analyzed to estimate the first observation-based nighttime (22:00 median local time) ozone response to the 27-day solar rotational cycle in the tropical mesosphere/lower thermosphere (50-110 km altitude). The ozone response to solar rotational variability is derived from linear correlation and regressions using Lyman-a line (121.6 nm) as solar index that varies by about 10-15% over solar rotational cycles. In the lower mesosphere (50-70 km), the GOMOS ozone is found to be correlated with the solar fluctuations and exhibits a sensitivity of similar to 0.1 (expressed in percent change of ozone for 1% change in Lyman-alpha). In the upper mesosphere/lower thermosphere (above 80 km), ozone variations become anticorrelated with solar rotational variations. In this region, the vertical profile of ozone sensitivity to the 27-day solar cycle exhibits a maximum of 1.8 at 81 km, a minimum of 0.3 at 100 km, and a sharp increase above. Such high ozone sensitivities are observed for the first time. The observed ozone response is compared with chemistry-climate simulations from the Hamburg model of the neutral and ionized atmosphere (HAMMONIA) that is forced with an idealized 27-day solar spectral irradiance time series. Although observational and model results share some common features, substantial discrepancies are found. Namely, the altitude of transition from positive to negative solar ozone correlation signal in the model simulation is found about 10 km below the altitude of the observations and the amplitude of the ozone sensitivity is generally vastly underestimated by the model. |
| 领域 | 气候变化 |
| 收录类别 | SCI-E |
| WOS记录号 | WOS:000445331900031 |
| WOS关键词 | STRATOSPHERIC OZONE ; MIDDLE ATMOSPHERE ; ULTRAVIOLET VARIATIONS ; UV VARIATIONS ; TEMPERATURE RESPONSES ; SPECTRAL IRRADIANCE ; TERM VARIATIONS ; LONG-TERM ; SENSITIVITY ; VARIABILITY |
| WOS类目 | Meteorology & Atmospheric Sciences |
| WOS研究方向 | Meteorology & Atmospheric Sciences |
| 引用统计 | |
| 文献类型 | 期刊论文 |
| 条目标识符 | http://119.78.100.173/C666/handle/2XK7JSWQ/33818 |
| 专题 | 气候变化 |
| 作者单位 | 1.CNRS, Observat Spatiales IPSL, Lab Atmospheres, Guyancourt, France; 2.Max Planck Inst Meteorol, Hamburg, Germany |
| 推荐引用方式 GB/T 7714 | Thieblemont, R.,Bekki, S.,Marchand, M.,et al. Nighttime Mesospheric/Lower Thermospheric Tropical Ozone Response to the 27-Day Solar Rotational Cycle: ENVISAT-GOMOS Satellite Observation Versus HAMMONIA Idealized Chemistry-Climate Model Simulations[J]. JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES,2018,123(16):8883-8896. |
| APA | Thieblemont, R..,Bekki, S..,Marchand, M..,Bossay, S..,Schmidt, H..,...&Hauchecorne, A..(2018).Nighttime Mesospheric/Lower Thermospheric Tropical Ozone Response to the 27-Day Solar Rotational Cycle: ENVISAT-GOMOS Satellite Observation Versus HAMMONIA Idealized Chemistry-Climate Model Simulations.JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES,123(16),8883-8896. |
| MLA | Thieblemont, R.,et al."Nighttime Mesospheric/Lower Thermospheric Tropical Ozone Response to the 27-Day Solar Rotational Cycle: ENVISAT-GOMOS Satellite Observation Versus HAMMONIA Idealized Chemistry-Climate Model Simulations".JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES 123.16(2018):8883-8896. |
| 条目包含的文件 | 条目无相关文件。 | |||||
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