Why is the temperature response larger for radiative forcing imposed in high latitudes than for forcing imposed in low latitudes?

被引:0
|
作者
Harpreet Kaur [1 ]
Govindasamy Bala [1 ]
Ashwin K. Seshadri [1 ]
机构
[1] Centre for Atmospheric and Oceanic Sciences,Divecha Centre for Climate Change
[2] Indian Institute of Science,undefined
[3] Indian Institute of Science,undefined
关键词
D O I
10.1007/s00382-025-07659-y
中图分类号
学科分类号
摘要
Previous studies have shown that radiative forcing imposed in high latitudes causes larger global warming than similar forcing in low latitudes. In this paper, we study the causes for this using a linear forcing-feedback framework. For this we conducted different experiments by increasing the solar insolation in various latitude bands using the NCAR CAM4 model and compare the magnitudes of five major climate feedbacks (Planck, albedo, lapse rate, water vapour, and clouds) for these latitudinal radiative forcing distributions. Compared to the simulation where forcing is imposed in low latitudes, we find that the climate sensitivity is nearly twice (thrice) in the simulation where the forcing is imposed in northern (southern) hemisphere high latitudes. We show that these sensitivity differences between low and high latitude radiative forcing simulations primarily arise due to differences in all four classically defined feedbacks including albedo, lapse rate, water vapour, and cloud feedbacks, with the largest differences attributed to differences in lapse rate, water vapor, and cloud feedbacks. Albedo feedback and the Planck response also contribute to the overall differences. Our study highlights the strong dependence of climate feedbacks and sensitivity on the meridional structure of radiative forcing, which could have implications for the design of solar radiation modification options that are proposed to offset anthropogenic climate change.
引用
收藏
相关论文
共 50 条
  • [21] Transient climate response estimated from radiative forcing and observed temperature change
    Gregory, J. M.
    Forster, P. M.
    JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2008, 113 (D23)
  • [22] Global temperature response to radiative forcing: Solar cycle versus volcanic eruptions
    Rypdal, K.
    JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2012, 117
  • [23] Observational estimation of radiative feedback to surface air temperature over Northern High Latitudes
    Jiwon Hwang
    Yong-Sang Choi
    WonMoo Kim
    Hui Su
    Jonathan H. Jiang
    Climate Dynamics, 2018, 50 : 615 - 628
  • [24] Observational estimation of radiative feedback to surface air temperature over Northern High Latitudes
    Hwang, Jiwon
    Choi, Yong-Sang
    Kim, WonMoo
    Su, Hui
    Jiang, Jonathan H.
    CLIMATE DYNAMICS, 2018, 50 (1-2) : 615 - 628
  • [25] RESPONSE OF CIRCULATION AND HEAT-TRANSPORT IN THE NORTH-ATLANTIC TO CHANGES IN THERMOHALINE FORCING IN NORTHERN LATITUDES - A MODEL STUDY
    DOSCHER, R
    BONING, CW
    HERRMANN, P
    JOURNAL OF PHYSICAL OCEANOGRAPHY, 1994, 24 (11) : 2306 - 2320
  • [26] Interhemispheric anti-phasing of orbitally driven monsoon intensity: Implications for ice-volume forcing in the high latitudes
    Mueller, Ulrich C.
    Fletcher, William J.
    Milner, Alice M.
    Scheiter, Simon
    EARTH AND PLANETARY SCIENCE LETTERS, 2013, 377 : 34 - 42
  • [27] Response of Earth's surface temperature to radiative forcing over AD 1-2009
    Friend, A. D.
    JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2011, 116
  • [28] Influence of the Atlantic Meridional Overturning Circulation on the Northern Hemisphere Surface Temperature Response to Radiative Forcing
    Maroon, Elizabeth A.
    Kay, Jennifer E.
    Karnauskas, Kristopher B.
    JOURNAL OF CLIMATE, 2018, 31 (22) : 9207 - 9224
  • [29] Radiative forcing and temperature response to changes in urban albedos and associated CO2 offsets
    Menon, Surabi
    Akbari, Hashem
    Mahanama, Sarith
    Sednev, Igor
    Levinson, Ronnen
    ENVIRONMENTAL RESEARCH LETTERS, 2010, 5 (01):
  • [30] Electron Temperature Response to Solar Forcing in the Low-Latitude Martian Ionosphere
    Pilinski, M.
    Andersson, L.
    Fowler, C.
    Peterson, W. K.
    Thiemann, E.
    Elrod, M. K.
    JOURNAL OF GEOPHYSICAL RESEARCH-PLANETS, 2019, 124 (11) : 3082 - 3094