Future Intensification of the Water Cycle with an Enhanced Annual Cycle over Global Land Monsoon RegionsSource: Journal of Climate:;2019:;volume 032:;issue 017::page 5437DOI: 10.1175/JCLI-D-18-0628.1Publisher: American Meteorological Society
Abstract: AbstractAn integrated picture of the future changes in the water cycle is provided focusing on the global land monsoon (GLM) region, based on multimodel projections under the representative concentration pathway 8.5 (RCP8.5) from phase 5 of the Coupled Model Intercomparison Project (CMIP5). We investigate the reservoirs (e.g., precipitable water, soil moisture) and water fluxes (e.g., precipitation P, evaporation E, precipitation minus evaporation P ? E, and total runoff) of the water cycle. The projected intensification of the water cycle with global warming in the GLM region is reflected in robust increases in annual-mean P (multimodel median response of 0.81% K?1), E (0.57% K?1), P ? E (1.58% K?1), and total runoff (2.08% K?1). Both surface (?0.83% K?1) and total soil moisture (?0.26% K?1) decrease as a result of increasing evaporative demand. Regionally, the Northern Hemispheric (NH) African, South Asian, and East Asian monsoon regions would experience an intensified water cycle, as measured by the coherent increases in P, P ? E, and runoff, while the NH American monsoon region would experience a weakened water cycle. Changes in the monthly fields are more remarkable and robust than in the annual mean. An enhanced annual cycle (by ~3%?5% K?1) with a phase delay from the current climate in P, P ? E, and runoff is projected, featuring an intensified water cycle in the wet season while little changes or slight weakening in the dry season. The increased seasonality and drier soils throughout the year imply increasing flood and drought risks and agricultural yields reduction. Limiting global warming to 1.5°C, the low warming target set by the Paris Agreement, could robustly reduce additional hydrological risks from increased seasonality as compared to higher warming thresholds.
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contributor author | Zhang, Wenxia | |
contributor author | Zhou, Tianjun | |
contributor author | Zhang, Lixia | |
contributor author | Zou, Liwei | |
date accessioned | 2019-10-05T06:42:33Z | |
date available | 2019-10-05T06:42:33Z | |
date copyright | 6/5/2019 12:00:00 AM | |
date issued | 2019 | |
identifier other | JCLI-D-18-0628.1.pdf | |
identifier uri | http://yetl.yabesh.ir/yetl1/handle/yetl/4263169 | |
description abstract | AbstractAn integrated picture of the future changes in the water cycle is provided focusing on the global land monsoon (GLM) region, based on multimodel projections under the representative concentration pathway 8.5 (RCP8.5) from phase 5 of the Coupled Model Intercomparison Project (CMIP5). We investigate the reservoirs (e.g., precipitable water, soil moisture) and water fluxes (e.g., precipitation P, evaporation E, precipitation minus evaporation P ? E, and total runoff) of the water cycle. The projected intensification of the water cycle with global warming in the GLM region is reflected in robust increases in annual-mean P (multimodel median response of 0.81% K?1), E (0.57% K?1), P ? E (1.58% K?1), and total runoff (2.08% K?1). Both surface (?0.83% K?1) and total soil moisture (?0.26% K?1) decrease as a result of increasing evaporative demand. Regionally, the Northern Hemispheric (NH) African, South Asian, and East Asian monsoon regions would experience an intensified water cycle, as measured by the coherent increases in P, P ? E, and runoff, while the NH American monsoon region would experience a weakened water cycle. Changes in the monthly fields are more remarkable and robust than in the annual mean. An enhanced annual cycle (by ~3%?5% K?1) with a phase delay from the current climate in P, P ? E, and runoff is projected, featuring an intensified water cycle in the wet season while little changes or slight weakening in the dry season. The increased seasonality and drier soils throughout the year imply increasing flood and drought risks and agricultural yields reduction. Limiting global warming to 1.5°C, the low warming target set by the Paris Agreement, could robustly reduce additional hydrological risks from increased seasonality as compared to higher warming thresholds. | |
publisher | American Meteorological Society | |
title | Future Intensification of the Water Cycle with an Enhanced Annual Cycle over Global Land Monsoon Regions | |
type | Journal Paper | |
journal volume | 32 | |
journal issue | 17 | |
journal title | Journal of Climate | |
identifier doi | 10.1175/JCLI-D-18-0628.1 | |
journal fristpage | 5437 | |
journal lastpage | 5452 | |
tree | Journal of Climate:;2019:;volume 032:;issue 017 | |
contenttype | Fulltext |