參考文獻 |
1.王寶貫,1997:雲物理學。渤海堂出版社,共382頁。
2.郭廷新,曾忠一,1994:半隱式半拉格朗日法在雲模式中的應用。大氣科學,第10期,第三號,387-415。
3.許依萍,1998:台灣地形對颱風環流變化之影響。國立中央大學,大氣物理研究所,碩士論文,共121頁。
4.黃毅堅,1999:北向侵台颱風的數值研究。國立中央大學,大氣物理研究所,碩士論文,共160頁。
5.Businger. J. A., J. C. Wyngaard, Y. Izumi, and E. F. Bradley, 1971: Flux-profile relationships in the atmospheric surface layer. J. Atmos. Sci., 28, 181-189.
6.Charney, J. G.,and A. Eliassen, 1964: On the growth of the hurricane depression. J. Atmos. Sci., 21, 68-75.
7.Clark, T. L., 1979: Numerical simulations with a three-dimensional cloud model: Lateral boundary condition experiments and multi-cellular severe storm simula- tions. J. Atmos. Sci., 36, 1070-1096.
8.Cotton, W. R., and G. J. Tripoli, 1978: Cumulus convection in shearflow: Three- dimensional numerical experiments. J. Atmos. Sci., 35, 1503- 1521.
9.Duynkerke. P. G., and A. G. M. Driedonks, 1987: A model for the turbulent structure of the stratocumulus-topped atmospheric boundary layer. J. Atmos. Sci., 44, 43-64.
10.————, 1988: Application of the E-ε turbulence closure model to the neutral and stable atmospheric boundary layer. J. Atmos. Sci., 45, 865- 880.
11.Emanuel, K. A., 1986: An air-sea interaction theory for tropical cyclones. Part I: Steady-state maintenance. J. Atmos. Sci., 43, 585-604.
12.Houze, R. A., 1993: Cloud Dynamics. Academic Press, 573 pp.
13.Huang, C. Y., and S. Raman, 1989: Application of the E-ε closure model to simulation of mesoscale topographic effects. Boundary Layer Meteor. 49, 169-195.
14.————, 1993: Study of three dimensional anelastic non-hydrostatic model(in Chinese). Research Report, National Science Council, Taiwan.
15.————, 1994: Semi-Lagrangian advection schemes and Eulerian WKL algorithms. Mon. Wea. Rev. 122, 1647-1658.
16.————, and Y. L. Lin, 1997: The evolution of mesoscale vortex impinging on symme- tric topography. Proc. Natl. Sci. Counc., 21, 285-309.
17.Klemp, J. B., and R. B. Wilhelmson, 1978: The simulation of three-dimensional con- vective storm dynamics. J. Atmos. Sci., 35, 1070- 1096.
18.Kuo, H.-L., 1965: On formation and intensification of tropical cyclones through latent heat release by cumulus convection. J. Atmos. Sci., 22, 40-63.
19.————, 1974: Further studies of the parameterization of the influence of cumulus con- vection on large-scale flow. J. Atmos. Sci., 31, 1232-1240.
20.Leary, C. A., and R. A. Houze, 1979: Melting and evaporation of hydrometeors in precipitation from the anvil clouds of deep tropical con- vection. J. Atmos. Sci., 36, 669-679.
21.Lin, Y.-L., R. D. Farley, and H. D. Orville, 1983: Bulk parameterization of the snow field in a cloud model. J. Climate Appl. Meteor., 22, 1065-1092.
22.————, J. Han, and D. W. Hamilton, 1999: Orographic influence on an drifting cyclone. J. Atmos. Sci., 56, 534-562.
23.Liu, Yubao, D.-L. Zhang, and M. K. Yau, 1997: A multiscale numerical study of hurricane Andrew(1992). Part I: Explicit simulation and verification. Mon. Wea. Rev., 125, 3073-3093.
24.————, ————, and ————, 1999: A multiscale numerical study of hurricane Andrew(1992). Part II: Kinematics and inner-core structures. Mon. Wea. Rev., 127, 2597-2616.
25.Lord, S. J., H. E. Willoughby, and J. M. Piotrowicz, 1984: Role of a parameterized ice-phase microphysics in an axisymmetric, nonhydrostatic tropical cyclone mo- del. J. Atmos. Sci., 41, 2836- 2848.
26.Mellor, G. L., and T. Yamada, 1982: Development of a turbulence closure model for geophysical fluid problem. Rev. Geophys. Space Phys., 20, 851-875.
27.Ogura, Y., 1963: A review of numerical modeling research on small-scale convection in the atmosphere. Meteor. Monogr., 5, 65-76.
28.Orlanski. I., 1976: A simple boundary condition for unbounded hyperbolic flows. J. Comput. Phys., 21, 251-269.
29.Ooyama, K., 1964: A dynamical model for the study of tropical cyclone development. Geofys. Int., 4, 187-198.
30.Rotunno, R., and K. A. Emanuel, 1987: An air-sea interaction theory for tropical cyclones. Part II: Evolution study using a nonhydrostatic axisymmetric numeri- cal model. J. Atmos. Sci., 44, 542-561.
31.Schlesinger, R. E., 1980: A three-dimensional numerical model of an isolated thunder-storm. Part II: Dynamics of updraft splitting and mesovortex couplet evolution. J. Atmos. Sci., 37, 395-420.
32.Soong, S.-T., and Y. Ogura, 1973: A comparison between axisymmetric and slab- symmetric cumulus cloud models. J. Atmos. Sci., 30, 879- 893.
33.Tao, W.-K., and J. Simpson, 1993: Goddard cumulus ensemble model. Part I: Model description. Terr. Atmos. Oceanic Sci., 41, 35-72.
34.————, ————, and M. Mccumber, 1989: An ice-water saturation adjustment. Mon. Wea. Rev., 11, 231-235.
35.————, and S.-T. Soong, 1986: The study of the response of deep tropical clouds to mesoscale processes: Three-dimensional numerical experiments. J. Atmos. Sci., 43, 2653-2676.
36.Tripoli, G. J., 1992: An explicit three-dimensional nonhydrostatic numerical simula- tion of a tropical cyclone. Meteor. Atmos. Phys., 49, 229-254.
37.Willoughby, H. E., J. A. Clos, and M. G. Shoreibah, 1982: Concentric eye walls, secondary wind maxima, and the evolution of the hurricane vortex. J. Atmos. Sci., 390, 395-411..
38.————, H.-L. Jin, S. J. Lord, and J. M. Piotrowicz, 1984: Hurricane structure and evolu- tion as simulated by an axisymmetric, nonhydrostatic numerical model. J. Atmos. Sci., 41, 1169-1186.
39.Zhang, D.-L., 1989: The effect of parameterized ice microphysics on the simulation of vortex circulation with a mesoscale hydrostatic model. Tellus, 41A, 132-147.
40.————, E.-Y. Hsie, and M. W. Moncrieff, 1988: A comparison of explicit and implicit predictions of convective and stratiform precipitating weather systems with a meso-β scale numerical model. Quart. J. Roy. Meteor. Soc., 114, 31-60. |