Satellite constraint on the tropospheric ozone radiative effect

Satellite constraint on the tropospheric ozone radiative effect
复制标题

卫星对对流层臭氧辐射效应的约束

DOI:
10.1002/2015gl064037
复制
发表时间:
2015
影响因子:
5.2
通讯作者:
Rap A
Rap A
中科院分区:
地球科学1区
文献类型:
--
作者:
Rap A

文献摘要

参考文献

被引文献

相似文献

对流层臭氧通过与短波和长波辐射相互作用,直接影响地球的辐射平衡。在这里,我们使用对流层发射光谱仪卫星仪器对对流层臭氧的测量,以及化学输送和辐射传输模式,对平流层调整后的对流层臭氧的年度辐射效应(RE)进行初步估计。我们发现模拟的臭氧浓度和观测的臭氧浓度之间的差异对RE几乎没有影响,这表明我们现在的对流层臭氧RE估计为1.17 ± 0.03 W m−2是可靠的。柱状臭氧归一化的稀土元素在工业化前和现代之间有所下降。利用历史生物质燃烧和无人为排放的模拟,我们计算出对流层臭氧的辐射强迫为0.32 W m−2,在目前的最佳估计范围内。在臭氧丰度相近的模拟中,我们提出了一种辐射核方法,作为计算臭氧资源的一种有效而准确的工具。
Tropospheric ozone directly affects the radiative balance of the Earth through interaction with shortwave and longwave radiation. Here we use measurements of tropospheric ozone from the Tropospheric Emission Spectrometer satellite instrument, together with chemical transport and radiative transfer models, to produce a first estimate of the stratospherically adjusted annual radiative effect (RE) of tropospheric ozone. We show that differences between modeled and observed ozone concentrations have little impact on the RE, indicating that our present‐day tropospheric ozone RE estimate of 1.17 ± 0.03 W m−2is robust. The RE normalized by column ozone decreased between the preindustrial and the present‐day. Using a simulation with historical biomass burning and no anthropogenic emissions, we calculate a radiative forcing of 0.32 W m−2for tropospheric ozone, within the current best estimate range. We propose a radiative kernel approach as an efficient and accurate tool for calculating ozone REs in simulations with similar ozone abundances.
DOI: 10.5194/acp-13-4057-2013
发表时间: 2013-04
影响因子: 6.3
作者:
K. W. Bowman;D. Shindell;H. Worden;J. Lamarque;Paul Young;David Stevenson;Z. Qu;M. D. L. Torre;D. Bergmann;P. Cameron-smith;William J. Collins;R. M. Doherty;S. Dalsøren;G. Faluvegi;G. Folberth;L. Horowitz;B. Josse;Y. Lee;Ian A. MacKenzie;G. Myhre;Tatsuya Nagashima;V. Naik;David A Plummer;S. Rumbold;R. Skeie;S. Strode;K. Sudo;S. Szopa;A. Voulgarakis;G. Zeng;S. Kulawik;A. Aghedo;John R. Worden
通讯作者: K. W. Bowman;D. Shindell;H. Worden;J. Lamarque;Paul Young;David Stevenson;Z. Qu;M. D. L. Torre;D. Bergmann;P. Cameron-smith;William J. Collins;R. M. Doherty;S. Dalsøren;G. Faluvegi;G. Folberth;L. Horowitz;B. Josse;Y. Lee;Ian A. MacKenzie;G. Myhre;Tatsuya Nagashima;V. Naik;David A Plummer;S. Rumbold;R. Skeie;S. Strode;K. Sudo;S. Szopa;A. Voulgarakis;G. Zeng;S. Kulawik;A. Aghedo;John R. Worden
DOI: 10.1002/grl.50441
发表时间: 2013-06
影响因子: 5.2
作者:
A. Rap;C. Scott;D. Spracklen;N. Bellouin;P. Forster;K. Carslaw;A. Schmidt;G. Mann
通讯作者: A. Rap;C. Scott;D. Spracklen;N. Bellouin;P. Forster;K. Carslaw;A. Schmidt;G. Mann
DOI: 10.1029/2012jd017751
发表时间: 2012-08
影响因子: --
作者:
M. Riese;F. Ploeger;A. Rap;B. Vogel;P. Konopka;M. Dameris;P. Forster
通讯作者: M. Riese;F. Ploeger;A. Rap;B. Vogel;P. Konopka;M. Dameris;P. Forster
DOI: 10.5194/acp-6-2017-2006
发表时间: 2006-06-09
影响因子: 6.3
作者:
Fuzzi, S.;Andreae, M. O.;Poeschl, U.
通讯作者: Poeschl, U.
DOI: 10.1175/1520-0469(1980)037
发表时间: 1980-01-01
影响因子: 3.1
作者:
FELS, SB;MAHLMAN, JD;SINCLAIR, RW
通讯作者: SINCLAIR, RW