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Quantification of tropical monsoon precipitation changes in terms of interhemispheric differences in stratospheric sulfate aerosol optical depth
by
Cao, Long
, Roose, Shinto
, Bala, Govindasamy
, Caldeira, Ken
, Krishnamohan, K. S
in
Aerosol optical depth
/ Aerosols
/ Anthropogenic climate changes
/ Anthropogenic factors
/ Cerebral hemispheres
/ Climate change
/ Climate models
/ Geoengineering
/ Human influences
/ Hydrologic cycle
/ Hydrological cycle
/ Intertropical convergence zone
/ Meridional distribution
/ Monsoon precipitation
/ Monsoon rainfall
/ Monsoons
/ Northern Hemisphere
/ Optical analysis
/ Optical thickness
/ Precipitation
/ Radiative forcing
/ Rainfall
/ Sensitivity
/ Southern Hemisphere
/ Stratosphere
/ Stratospheric sulfate
/ Sulfate aerosols
/ Sulfates
/ Summer
/ Summer monsoon
/ Temperature differences
/ Temperature gradients
/ Volcanic aerosols
/ Wind
2023
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Quantification of tropical monsoon precipitation changes in terms of interhemispheric differences in stratospheric sulfate aerosol optical depth
by
Cao, Long
, Roose, Shinto
, Bala, Govindasamy
, Caldeira, Ken
, Krishnamohan, K. S
in
Aerosol optical depth
/ Aerosols
/ Anthropogenic climate changes
/ Anthropogenic factors
/ Cerebral hemispheres
/ Climate change
/ Climate models
/ Geoengineering
/ Human influences
/ Hydrologic cycle
/ Hydrological cycle
/ Intertropical convergence zone
/ Meridional distribution
/ Monsoon precipitation
/ Monsoon rainfall
/ Monsoons
/ Northern Hemisphere
/ Optical analysis
/ Optical thickness
/ Precipitation
/ Radiative forcing
/ Rainfall
/ Sensitivity
/ Southern Hemisphere
/ Stratosphere
/ Stratospheric sulfate
/ Sulfate aerosols
/ Sulfates
/ Summer
/ Summer monsoon
/ Temperature differences
/ Temperature gradients
/ Volcanic aerosols
/ Wind
2023
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Quantification of tropical monsoon precipitation changes in terms of interhemispheric differences in stratospheric sulfate aerosol optical depth
by
Cao, Long
, Roose, Shinto
, Bala, Govindasamy
, Caldeira, Ken
, Krishnamohan, K. S
in
Aerosol optical depth
/ Aerosols
/ Anthropogenic climate changes
/ Anthropogenic factors
/ Cerebral hemispheres
/ Climate change
/ Climate models
/ Geoengineering
/ Human influences
/ Hydrologic cycle
/ Hydrological cycle
/ Intertropical convergence zone
/ Meridional distribution
/ Monsoon precipitation
/ Monsoon rainfall
/ Monsoons
/ Northern Hemisphere
/ Optical analysis
/ Optical thickness
/ Precipitation
/ Radiative forcing
/ Rainfall
/ Sensitivity
/ Southern Hemisphere
/ Stratosphere
/ Stratospheric sulfate
/ Sulfate aerosols
/ Sulfates
/ Summer
/ Summer monsoon
/ Temperature differences
/ Temperature gradients
/ Volcanic aerosols
/ Wind
2023
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Quantification of tropical monsoon precipitation changes in terms of interhemispheric differences in stratospheric sulfate aerosol optical depth
Journal Article
Quantification of tropical monsoon precipitation changes in terms of interhemispheric differences in stratospheric sulfate aerosol optical depth
2023
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Overview
Stratospheric Aerosol Geoengineering (SAG) is one of the solar geoengineering approaches that have been proposed to offset some of the impacts of anthropogenic climate change. Past studies have shown that SAG may have adverse impacts on the global hydrological cycle. Using a climate model, we quantify the sensitivity of the tropical monsoon precipitation to the meridional distribution of volcanic sulfate aerosols prescribed in the stratosphere in terms of the changes in aerosol optical depth (AOD). In our experiments, large changes in summer monsoon precipitation in the tropical monsoon regions are simulated, especially over the Indian region, in association with meridional shifts in the location of the intertropical convergence zone (ITCZ) caused by changes in interhemispheric AOD differences. Based on our simulations, we estimate a sensitivity of − 1.8° ± 0.0° meridional shift in global mean ITCZ and a 6.9 ± 0.4% reduction in northern hemisphere (NH) monsoon index (NHMI; summer monsoon precipitation over NH monsoon regions) per 0.1 interhemispheric AOD difference (NH minus southern hemisphere). We also quantify this sensitivity in terms of interhemispheric differences in effective radiative forcing and interhemispheric temperature differences: 3.5 ± 0.3% change in NHMI per unit (Wm−2) interhemispheric radiative forcing difference and 5.9 ± 0.4% change per unit (°C) interhemispheric temperature difference. Similar sensitivity estimates are also made for the Indian monsoon precipitation. The establishment of the relationship between interhemispheric AOD (or radiative forcing) differences and ITCZ shift as discussed in this paper will further facilitate and simplify our understanding of the effects of SAG on tropical monsoon rainfall.
Publisher
Springer Nature B.V
Subject
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