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Dependence of Hurricane Intensity and Structures on Vertical Resolution and Time-Step Size 被引量:16

Dependence of Hurricane Intensity and Structures on Vertical Resolution and Time-Step Size
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摘要 In view of the growing interests in the explicit modeling of clouds and precipitation, the effects of varying vertical resolution and time-step sizes on the 72-h explicit simulation of Hurricane Andrew (1992) are studied using the Pennsylvania State University/National Center for Atmospheric Research (PSU/NCAR) mesoscale model (i.e., MM5) with the finest grid size of 6 km. It is shown that changing vertical resolution and time-step size has significant effects on hurricane intensity and inner-core cloud/precipitation, but little impact on the hurricane track. In general, increasing vertical resolution tends to produce a deeper storm with lower central pressure and stronger three-dimensional winds, and more precipitation. Similar effects, but to a less extent, occur when the time-step size is reduced. It is found that increasing the low-level vertical resolution is more efficient in intensifying a hurricane, whereas changing the upper-level vertical resolution has little impact on the hurricane intensity. Moreover, the use of a thicker surface layer tends to produce higher maximum surface winds. It is concluded that the use of higher vertical resolution, a thin surface layer, and smaller time-step sizes, along with higher horizontal resolution, is desirable to model more realistically the intensity and inner-core structures and evolution of tropical storms as well as the other convectively driven weather systems. In view of the growing interests in the explicit modeling of clouds and precipitation, the effects of varying vertical resolution and time-step sizes on the 72-h explicit simulation of Hurricane Andrew (1992) are studied using the Pennsylvania State University/National Center for Atmospheric Research (PSU/NCAR) mesoscale model (i.e., MM5) with the finest grid size of 6 km. It is shown that changing vertical resolution and time-step size has significant effects on hurricane intensity and inner-core cloud/precipitation, but little impact on the hurricane track. In general, increasing vertical resolution tends to produce a deeper storm with lower central pressure and stronger three-dimensional winds, and more precipitation. Similar effects, but to a less extent, occur when the time-step size is reduced. It is found that increasing the low-level vertical resolution is more efficient in intensifying a hurricane, whereas changing the upper-level vertical resolution has little impact on the hurricane intensity. Moreover, the use of a thicker surface layer tends to produce higher maximum surface winds. It is concluded that the use of higher vertical resolution, a thin surface layer, and smaller time-step sizes, along with higher horizontal resolution, is desirable to model more realistically the intensity and inner-core structures and evolution of tropical storms as well as the other convectively driven weather systems.
出处 《Advances in Atmospheric Sciences》 SCIE CAS CSCD 2003年第5期711-725,共15页 大气科学进展(英文版)
关键词 hurricane intensity vertical resolution numerical weather prediction hurricane intensity vertical resolution numerical weather prediction
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  • 1Anthes, R. A., and D. Keyser, 1979: Tests of a fine-mesh model over Europe and the United States. Mon Wea. Rev., 107, 963-984.
  • 2Chou~ M.'-D., ]~975: A study of the effects of vertical res- olution and measurement errors on an iteratively in- verted temperature profile. J. Atmos. Sci., 32~ 419- 426.
  • 3Dudhia, J., 1989: Numerical study of convection ob- served during the winter monsoon experiment using.a mesoscale two-dimensional model., J. Atmos. Sci.,46~ 3077-3107.
  • 4Dudhia, J , 1993-A nonhydrostatic version of the Penn State-NCAR mesoscale model: Validation tests and simulation of an Atlantic cyclone and cold front. Mon. Wea. Rev , 121, 1493-1513.
  • 5Emanuel, K A , 1986:-Anair--sea interaction theory for tropical cyclones. Part I: Steady-state maintenance. J. Atmos. Sci . 43. 585-604.
  • 6Hamilton, K , R J Wilson, and R S Hemler, 1999: Mid dle atmosphere simulated with high vertical and horizontal resolution versions of a GCM: Improvements in the cold pole bias and generation of a QBO-like oscil- lation in the tropics. J. Atmos. Sci . 56. 3829-3946.
  • 7Lane, D E , R. C J Somerville, and S F Iacobellis.2000: Sensitivity of cloud and radiation paxameterizations to changes in vertical resolution. J. Climate, 13, 915- 922.
  • 8Lindzen, R S , and M S Fox-Rabinovitz, 1989: Consistent vertical and horizontal resolution. Mon. Wea. Rev , 117, 2575-2583.
  • 9Liu, Y , D L Zhang, and M K Yau, 1997: A multiscale numerical study of Hurricane Andrew (1992). Part I: An explicit simulation. Mon. Wea. Rev., 125, 3073- 3093.
  • 10Liu, Y , D L Zhang, and M K Yau, 1999: A multiscale numerical study of Hurricane Andrew (1992). Part II: Kinematics and inner-core structures. Mon. Wea. Rev . 127. 2597-2616.

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