Advances in understanding the changes of tropical rainfall annual cycle: a review

F. Song, Ruby Leung, Jian Lu, Tianjun Zhou, Ping Huang
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Abstract

Aided by progress in the theoretical understanding, new knowledge on tropical rainfall annual cycle changes under global warming background has been advanced in the past decade. In this review, we focus on recent advances in understanding the changes of tropical rainfall annual cycle, including its four distinct features: amplitude, pattern shift, phase and wet/dry season length changes. In a warming climate, the amplitude of tropical rainfall annual cycle is enhanced, more evidently over ocean, while the phase of tropical rainfall annual cycle is delayed, mainly over land. The former is explained by the wet-get-wetter mechanism and the latter is explained by the enhanced effective atmospheric heat capacity and increased convective barrier. The phase delay over land has already emerged in the past four decades. The pattern shift under warming is marked by two features: equatorward shift of the inter-tropical convergence zone throughout the year and the land-to-ocean precipitation shift in the rainy season. The former is explained by the upped-ante mechanism and/or related to the enhanced equatorial warming in a warmer world. The latter is suggested to be caused by the opposite land and ocean surface temperature annual cycle changes in the tropics. Over tropical rainforest regions such as Amazon and Congo Basin, the dry season has lengthened in the recent decades, but the fundamental reason is still unclear. Despite the notable progress of the last decade, many gaps remain in understanding the mechanism, quantifying and attributing the emergence, narrowing the inter-model uncertainty, and evaluating the impact of tropical rainfall annual cycle changes, motivating future work guided by some directions proposed in this review.
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热带降水年循环变化研究进展综述
近十年来,随着理论认识的不断进步,对全球变暖背景下热带降水年循环变化有了新的认识。本文综述了近年来热带降水年周期变化的研究进展,包括其四个显著特征:振幅、模式转换、相位和干湿季长度变化。在变暖气候下,热带降水年周期的振幅增强,在海洋上空更为明显,而热带降水年周期的相位延迟,主要在陆地上空。前者可以用湿变湿机制来解释,后者可以用大气有效热容的增强和对流屏障的增加来解释。在过去的40年里,土地上的阶段延迟已经出现。变暖条件下的模式转变表现为两个特征:全年热带辐合带向赤道方向的转移和雨季陆海降水的转移。前者可以用事前机制来解释和/或与一个变暖的世界中赤道变暖的增强有关。后者被认为是由热带地区相反的陆地和海洋表面温度年循环变化引起的。在亚马逊和刚果盆地等热带雨林地区,近几十年来旱季延长了,但根本原因尚不清楚。尽管近十年来取得了显著进展,但在理解机制、量化和归因出现、缩小模式间不确定性以及评估热带降雨年循环变化的影响方面仍存在许多差距,激励着未来的工作以本文提出的一些方向为指导。
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