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Mesoscale modeling of smoke transport over the Southeast Asian Maritime Continent: coupling of smoke direct radiative effect below and above the low-level clouds

机译:东南亚海域烟雾传输的中尺度模型:低空云层之上和之下的烟雾直接辐射效应的耦合

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摘要

The online-coupled Weather Research and Forecasting model with Chemistry (WRF-Chem) is used to simulate the direct and semi-direct radiative impacts of smoke particles over the Southeast Asian Maritime Continent (MC, 10° S-10° N, 90-150° E) during October 2006 when a significant El Ni?o event caused the highest biomass burning activity since 1997. With the use of an OC (organic carbon) / BC(black carbon) ratio of 10 in the smoke emission inventory, the baseline simulation shows that the clouds can reverse the negative smoke forcing in cloud-free conditions to a positive value. The net absorption of the atmosphere is largely enhanced when smoke resides above a cloud. This led to a warming effect at the top of the atmosphere (TOA) with a domain and monthly average forcing value of ~20 W m~(-2) over the islands of Borneo and Sumatra. Smoke-induced monthly average daytime heating (0.3 K) is largely confined above the low-level clouds, and results in a local convergence over the smoke source region. This heating-induced convergence transports more smoke particles above the planetary boundary layer height (PBLH), hence rendering a positive effect. This positive effect contrasts with a decrease in the cloud fraction resulting from the combined effects of smoke heating within the cloud layer and the more stable boundary layer; the latter can be considered as a negative effect in which a decrease of the cloud fraction weakens the heating by smoke particles above the clouds. During the nighttime, the elevated smoke layer lying above the clouds in the daytime is decoupled from the boundary layer, and the enhanced downdraft and shallower boundary layer lead to the accumulation of smoke particles near the surface. Because of monthly smoke radiative extinction, the amount of solar input at the surface is reduced by as much as 60 W m~(-2), which leads to a decrease in sensible heat, latent heat, 2m air temperature, and PBLH by a maximum of 20 W m~(-2), 20 W m~(-2), 1 K, and 120 m, respectively. During daytime, the cloud changes over continents mostly occur over the islands of Sumatra and Borneo where the low-level cloud fraction decreases more than 10 %. However, the change of local wind, including sea breeze, induced by the smoke direct radiative effect leads to more convergence over the Karimata Strait and the south coastal area of Kalimantan during both daytime and nighttime; consequently, the cloud fraction there is increased up to 20 %. The sensitivities with different OC/ BC ratios show the importance of the smoke singlescattering albedo for the smoke semi-direct effects. Lastly, a conceptual model is used to summarize the responses of clouds, smoke, temperature, and water vapor fields to the coupling of smoke direct effect below and above clouds over the Southeast Asian Maritime Continent.
机译:在线耦合的天气研究与化学预测模型(WRF-Chem)用于模拟烟雾颗粒对东南亚海域(MC,10°S-10°N,90-在2006年10月的150°E)期间,一次重大的El Ni?o事件引起了自1997年以来最高的生物质燃烧活动。在烟雾排放清单中使用OC(有机碳)/ BC(黑碳)比率为10时,基线模拟显示,在无云条件下,云可以将负烟强迫逆转为正值。当烟雾停留在云层上方时,大气的净吸收将大大增强。这导致了婆罗洲和苏门答腊岛上最高大气层(TOA)的变暖作用,其区域和月平均强迫值约为20 W m〜(-2)。烟雾引起的每月平均日间供暖(0.3 K)主要限于低层云以上,并导致烟雾源区域局部收敛。这种由加热引起的会聚将更多的烟尘颗粒传送到行星边界层高度(PBLH)以上,因此起到了积极作用。这种积极的作用与云层和更稳定的边界层内烟气加热的综合作用所导致的云分数降低相反。后者可被视为负面影响,其中云量的减少会削弱云层上方烟雾颗粒的加热。在夜间,白天白云之上的升高的烟层与边界层分离,增强的向下气流和较浅的边界层导致烟尘在地表附近堆积。由于每月都有烟气的辐射消光,地表的太阳输入量减少了多达60 W m〜(-2),导致显热,潜热,2m空气温度和PBLH降低了最大分别为20 W m〜(-2),20 W m〜(-2),1 K和120 m。白天,各大洲的云量变化主要发生在苏门答腊和婆罗洲岛上,其中低空云量减少了10%以上。然而,烟气直接辐射效应引起的局部风的变化,包括海风,导致白天和晚上在卡里马塔海峡和加里曼丹南部沿海地区发生更多的收敛;因此,那里的云量增加了20%。不同OC / BC比的灵敏度表明,烟雾单散射反照率对于烟雾半直接效应的重要性。最后,使用概念模型总结了云层,烟雾,温度和水蒸气场对东南亚海域上,下层和上层烟雾直接影响耦合的响应。

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