The response of land-falling tropical cyclone characteristics to projected climate change in northeast Australia

被引:0
作者
Chelsea L. Parker
Cindy L. Bruyère
Priscilla A. Mooney
Amanda H. Lynch
机构
[1] Brown University,Department of Earth, Environmental, and Planetary Sciences
[2] Brown University,Institute at Brown for Environment and Society
[3] National Center for Atmospheric Research,Environmental Sciences and Management
[4] North-West University,Uni Research Climate
[5] Bjerknes Centre for Climate Research,undefined
来源
Climate Dynamics | 2018年 / 51卷
关键词
Australia; Tropical cyclones; Climate change; Weather research and forecasting model; Pseudo global warming technique;
D O I
暂无
中图分类号
学科分类号
摘要
Land-falling tropical cyclones along the Queensland coastline can result in serious and widespread damage. However, the effects of climate change on cyclone characteristics such as intensity, trajectory, rainfall, and especially translation speed and size are not well-understood. This study explores the relative change in the characteristics of three case studies by comparing the simulated tropical cyclones under current climate conditions with simulations of the same systems under future climate conditions. Simulations are performed with the Weather Research and Forecasting Model and environmental conditions for the future climate are obtained from the Community Earth System Model using a pseudo global warming technique. Results demonstrate a consistent response of increasing intensity through reduced central pressure (by up to 11 hPa), increased wind speeds (by 5–10% on average), and increased rainfall (by up to 27% for average hourly rainfall rates). The responses of other characteristics were variable and governed by either the location and trajectory of the current climate cyclone or the change in the steering flow. The cyclone that traveled furthest poleward encountered a larger climate perturbation, resulting in a larger proportional increase in size, rainfall rate, and wind speeds. The projected monthly average change in the 500 mb winds with climate change governed the alteration in the both the trajectory and translation speed for each case. The simulated changes have serious implications for damage to coastal settlements, infrastructure, and ecosystems through increased wind speeds, storm surge, rainfall, and potentially increased size of some systems.
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页码:3467 / 3485
页数:18
相关论文
共 390 条
[91]  
De’ath G(2013)Implementation of the initial ACCESS numerical weather prediction system Aust Meteorol Oceanogr J 109 33-59
[92]  
Fabricius KE(2011)High-resolution coupled climate runoff simulations of seasonal snowfall over Colorado: a process study of current and warmer climate J Clim 93 534-167
[93]  
Sweatman H(2009)On the importance of the forward speed of hurricanes in storm surge forecasting: A numerical study Geophysical Research Letters 87 1523-1754
[94]  
Puotinen M(1996)Natural convection as a heat engine: a theory for CAPE J Atmos Sci 94 859-758
[95]  
Dee DP(2011)RCP 8.5—a scenario of comparatively high greenhouse gas emissions Clim Change 23 669-416
[96]  
Uppala SM(2009)Global climatology of convective available potential energy (CAPE) and convective inhibition (CIN) in ERA-40 reanalysis Atmos Res 40 1984-1070
[97]  
Simmons AJ(2006)The intensity forecasting experiment: A NOAA multiyear field program for improving tropical cyclone intensity forecasts Bull Am Meteorol Soc 118 1716-253
[98]  
Berrisford P(2013)NOAA’s hurricane intensity forecasting experiment: a progress report Bull Am Meteorol Soc 91 671-83
[99]  
Poli P(1996)Surrogate climate-change scenarios for regional climate models Geophys Res Lett 51 51-2631
[100]  
Kobayashi S(1983)The asymmetric boundary layer flow under a translating hurricane J Atmos Sci 39 n/a-n/a-1132