首页> 外文期刊>Journal of Quantitative Spectroscopy & Radiative Transfer >Atmospheric aerosol and black carbon optical properties and associated radiative forcing under haze conditions
【24h】

Atmospheric aerosol and black carbon optical properties and associated radiative forcing under haze conditions

机译:大气气溶胶和黑色碳光学性质以及雾度条件下的相关辐射强制

获取原文
获取原文并翻译 | 示例
获取外文期刊封面目录资料

摘要

The optical properties and radiative forcing of atmospheric aerosol (ARF) and black carbon (BC) aerosol (BCRF) in ultraviolet (UV), visible (VIS), near-infrared (NIR), and shortwave (SW) spectra were investigated under haze conditions based on the observations of the Aethalometer and sun-sky radiometer and simulations from libRadtran. The results show that the BC concentrations increased greatly from 2.73 mu g/m(3) under clear-air conditions to 7.95 mu g/m(3) under severe haze conditions, while BC aerosol optical depth (AOD) increased from 0.025 to 0.092. A high correlation (R-2 = 0.62) was found between BC AOD and absorbing aerosol optical depth (AAOD) derived from the sun-sky radiometer. The BCRF in SW (BCRFSW) varied from -10.20 W/m(2) under clear-air conditions to -25.40 W/m(2) under severe hazy conditions. However, its fraction in ARF (ARF(SW)) decreased from 19% to 17% simultaneously, which is mainly related to the decrease of the ratio of BC AOD to AOD. The fraction of ARF in VIS in ARF(SW) decreased from 56.3% under clear-air conditions to 50.5% under severe haze conditions, while the fraction of BCRF in VIS in BCRFSW was much larger, and increased from 72.9% to 73.8%. The BCRF efficiency (BCRFE) was much larger than ARF efficiency (ARFE), and both of them decreased with the development of haze. The ARFE in SW decreased from -173.84 W/m(2) under clear-air conditions to -112.75 W/m(2) under severe haze conditions while BCRFESW varied from -482.50 W/m(2) to -321.88 W/m(2). The decrease of ARFE and BCRFE is related to the increase of aerosol loading and asymmetry factor (ASY). The ASY increased and the forward scattering was enhanced with the development of haze due to the hygroscopic growth of aerosol particles, which reduced the extinction efficiency of aerosols including BC on solar radiation and the cooling effect on the surface. (C) 2020 Elsevier Ltd. All rights reserved.
机译:在雾霾条件下,基于Aethalometer和太阳天空辐射计的观测和libRadtran的模拟,研究了大气气溶胶(ARF)和黑碳气溶胶(BCRF)在紫外(UV)、可见光(VIS)、近红外(NIR)和短波(SW)光谱中的光学性质和辐射强迫。结果表明,BC浓度从晴空条件下的2.73μg/m(3)显著增加到严重雾霾条件下的7.95μg/m(3),而BC气溶胶光学厚度(AOD)从0.025增加到0.092。BC AOD与太阳-天空辐射计得出的吸收气溶胶光学厚度(AAOD)之间存在高度相关性(R-2=0.62)。西南部的BCRF(BCRFSW)在晴朗空气条件下为-10.20 W/m(2),在严重雾霾条件下为-25.40 W/m(2)。但其在ARF(ARF(SW))中的比例同时从19%下降到17%,这主要与BC-AOD与AOD的比值降低有关。ARF(SW)中VIS中ARF的比例从晴空条件下的56.3%下降到严重雾霾条件下的50.5%,而BCRFSW中VIS中BCRF的比例要大得多,从72.9%上升到73.8%。BCRF效率(BCRFE)比ARF效率(ARFE)大得多,并且随着雾霾的发展两者都降低。西南地区的ARFE从晴朗空气条件下的-173.84 W/m(2)降至严重雾霾条件下的-112.75 W/m(2),而BCRFESW则从-482.50 W/m(2)降至-321.88 W/m(2)。ARFE和BCRFE的降低与气溶胶负荷和不对称因子(ASY)的增加有关。随着雾霾的发展,ASY增加,前向散射增强,这是由于气溶胶颗粒的吸湿生长,降低了包括BC在内的气溶胶对太阳辐射的消光效率和表面的冷却效果。(C) 2020爱思唯尔有限公司版权所有。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号