Future Changes of Atmospheric Energy Cycle in CMIP5 Climate Models

被引:5
|
作者
Kanno, Yuki [1 ]
Iwasaki, Toshiki [2 ]
机构
[1] Cent Res Inst Elect Power Ind, Sustainable Syst Res Lab, Abiko, Chiba, Japan
[2] Tohoku Univ, Grad Sch Sci, Sendai, Miyagi, Japan
基金
日本学术振兴会;
关键词
insentropic coordinate; wave-mean flow interactions; energy cycle; future change; CMIP5; climate change; EARTH SYSTEM MODEL; CIRCULATION; STATIONARY; VARIABILITY; FORMULATION; SIMULATION; TRANSIENT; DIAGNOSIS; PRESSURE; WAVES;
D O I
10.1029/2021JD036380
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
Future changes in the atmospheric energy cycle were estimated by using 12 climate models from the fifth phase of the Coupled Model Intercomparison Project (CMIP5) and mass-weighted isentropic zonal-mean framework. In this framework, the zonal-mean available potential energy (A(Z)) is converted to the zonal-mean kinetic energy (K-Z) through mean-meridional direct circulations, and K-Z is converted to the wave energy (W), the sum of eddy available potential energy and eddy kinetic energy, through wave-mean flow interactions. The comparison between the late 21st century in a high emission scenario and the late 20th century in the historical scenario indicates a significant increase in A(Z) and K-Z in winter in the Northern Hemisphere (NH) and the Southern Hemisphere (SH). The wave energy significantly decreases in the NH winter but slightly increases in the SH winter. In the NH winter, the stationary wave energy significantly decreases, and the transient wave energy shifts poleward. Global warming reduces the baroclinic instability wave activity, which suppresses the upward Eliassen-Palm flux and wave-induced extratropical direct circulation. It decreases the dynamic energy conversion rates C(A(Z), K-Z) and C(K-Z, W). On the other hand, the diabatic wave energy generation rate (Q(E)) is projected to increase, particularly in the SH. The future W change is consistent with the change in the sum of C(K-Z, W) and Q(E). Changes in both the dynamical energy conversion associated with wave-mean flow interactions and the generation of eddy available potential energy associated with diabatic heating processes are necessary to explain the wave energy change.
引用
收藏
页数:26
相关论文
共 50 条
  • [1] A diagnostic study of future evaporation changes projected in CMIP5 climate models
    A. Laîné
    H. Nakamura
    K. Nishii
    T. Miyasaka
    [J]. Climate Dynamics, 2014, 42 : 2745 - 2761
  • [2] A diagnostic study of future evaporation changes projected in CMIP5 climate models
    Laine, A.
    Nakamura, H.
    Nishii, K.
    Miyasaka, T.
    [J]. CLIMATE DYNAMICS, 2014, 42 (9-10) : 2745 - 2761
  • [3] Response of atmospheric energy to historical climate change in CMIP5
    Bo Han
    Shihua Lü
    Yanhong Gao
    Yinhuan Ao
    Ruiqing Li
    [J]. Journal of Meteorological Research, 2015, 29 : 93 - 105
  • [4] Response of Atmospheric Energy to Historical Climate Change in CMIP5
    韩博
    吕世华
    高艳红
    奥银换
    李瑞青
    [J]. Journal of Meteorological Research, 2015, 29 (01) : 93 - 105
  • [5] Response of Atmospheric Energy to Historical Climate Change in CMIP5
    Han Bo
    Lu Shihua
    Gao Yanhong
    Ao Yinhuan
    Li Ruiqing
    [J]. JOURNAL OF METEOROLOGICAL RESEARCH, 2015, 29 (01) : 93 - 105
  • [6] Future changes in autumn atmospheric river events in British Columbia, Canada, as projected by CMIP5 global climate models
    Radic, Valentina
    Cannon, Alex J.
    Menounos, Brian
    Gi, Nayeob
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2015, 120 (18) : 9279 - 9302
  • [7] Projections of future changes in solar radiation in China based on CMIP5 climate models
    Liwei Yang
    Junxia Jiang
    Tian Liu
    Yujie Li
    Ya Zhou
    Xiaoqing Gao
    [J]. Global Energy Interconnection, 2018, 1 (04) : 452 - 459
  • [8] Centennial Changes of the Global Water Cycle in CMIP5 Models
    Levang, Samuel J.
    Schmitt, Raymond W.
    [J]. JOURNAL OF CLIMATE, 2015, 28 (16) : 6489 - 6502
  • [9] Historical and future changes of atmospheric precipitable water over China simulated by CMIP5 models
    Jingpeng Zhang
    Tianbao Zhao
    [J]. Climate Dynamics, 2019, 52 : 6969 - 6988
  • [10] Historical and future changes of atmospheric precipitable water over China simulated by CMIP5 models
    Zhang, Jingpeng
    Zhao, Tianbao
    [J]. CLIMATE DYNAMICS, 2019, 52 (11) : 6969 - 6988