Alfonso, L.A., Martínez D., Pérez C.A., 1996: Numerical simulations of a tropical convective cell in tropical conditions. 12th ICCP Proceedings, vol. 2, pp 801-804.
Alfonso, L.A., Martínez D., Pérez C.A., 1998: Numerical simulations of tropical convective clouds over Cuba using a one-dimensional and time dependent model. Atmospheric Research .47-48, 343-354
Asai, T., and Kasahara, 1967: A theoretical study of the compensating downward motions associated with cumulus clouds. J. Atm. Sci., 24, 487-496.
Arking, A, 1991: The radiative effects of clouds and their impact on climate, Bull. Am. Met. Soc., vol 71, n. 6.
Arnason G., Greenfield R.S., 1972. Micro and macro-structures of numerically simulated convective clouds. J. Atm. Sci., vol. 29, N 3, p. 342-367.
Bleck,, R., 1970: A fast, approximative method for integrating the stochastic coalescence equation. J. Geophys. Res., 75, 5165-5171.
Berry, E., 1967: Cloud droplet growth by collection. J. Atmos. Sci., 24, 688-701.
Berry E.X., Reinhardt R.L. An analysis of cloud drop growth by collection. Part I. Double distributions. J. Atm. Sci., 1974, vol. 31, N 7, p. 1814-1824.
Clark T.L. Numerical modeling of the dynamics and microphysics of cumulus warm convection. J. Atm. Sci., 1973, vol. 30, N 5, p.857-878.
Cotton, W.R., 1972: Numerical simulations of precipitation development in supercooled cumuli part II. Mon. Wea. Rev., 100, 764-784
Charlson, R.J., J.E. Lovelock, M.O. Andreade And S.G. Warren, 1987: Oceanic Phytoplankton, atmospheric sulphur, cloud albedo, and climate. Nature, 326, 655-661.
Danielsen, E.F., R. Bleck and D.A. Morris, 1972: Hail growth by stochastic collection in a cumulus clouds. J. Atm. Sci., 29, 135-155.
Gillespie, D.T., 1972: The stochastic coalescence model for cloud droplet growth. J. Atm. Sci., 29, 1496.
Golovin, A.M., 1963: The solution of the coagulation equation for cloud droplets in a rising air current. Bull. Acad. Sci. USSR Geophys. Ser. N. 5., 783-791.
Hall W.D. A detailed microphysical model within a twodimensional framework: model description and preliminary results. J. Atmo. Sci., 1980, vol. 37, N 11, p. 2486-2506.
Kogan., E. L., 1984. Modelación numérica en física de las nubes. (en ruso) Guidrometeoizdat. 182. pp.
Komabayashi M., Gonda L., Isono K. 1964. Lifetime of water drops before breaking and size distributions of fragment droplets. J.Met. Soc. Japan. vol. 42, N 3, p. 330-340.
Kovetz, A., and Olund, 1969: The effect of coalescence and condensation on rain formation in a cloud of finite vertical extent. J. Atmos. Sci., 26, 1060 -1065.
Martínez D. and E. G. Gori, 1997: Raindrop size distributions in convective clouds over Cuba. First results. Istituto di Fisica dellAtmosfera. IFA R.I. 97-3. 48 pp.
Ogura and Takahashi, 1971: Numerical simulation of the life cycle of a thunderstorm cell. Mon. Wea. Rev., 98. 895-911.
Ogura and Takahashi, 1973: The Development of warm rain in a cumulus model. J. Atm. Sci., 30, pp. 262 -277.
Pruppacher and Klett, 1997: Microphysics of clouds and precipitation. Kluwer Academic Publishers. 954 pp.
Raga, G.,Jonas, P.R., 1995: Vertical distributions of aerosol particles and CCN in clear air around the british isles. Atmospheric Environment. Vol. 29, n. 6, pp 673-684.
Scott, W.T., 1967: Poisson statistics in distributions of coalescing droplets. J. Atm. Sci., 24, 221.
Scott, W.T., 1968: Analytic studies of cloud droplet coalescence . J. Atm. Sci., 25, 54.
Shiino, 1978: A numerical study of precipitation development in cumulus clouds. Papers in Met.and Geoph., Vol 29, N. 4., pp 157-194.
Srivastava, R.C., 1971: Size distribution of raindrops generated by their breakup and coalescence. J. Atm. Sci. 28, 410.
Takeda, T., 1971. Numerical simulations of a precipitating convective cloud: The formation of a Long-Lasting cloud. J. Atm. Sci., 28, 350-376.
Twomey, S., 1977: The influence of pollution on the shortwave albedo of clouds. J. Atmos. Sci., 34, 1149-1152.
----and Piepgrass and T.L. Wolfe, 1984: An assesment of the impact of pollution on global cloud albedo. Tellus, 36B, 356-366.
Tzivion, S., Feingold, G., y Levin, Z., 1987: An efficient numerical solution to the stochastic collection equation. J. Atm. Sci. 44, 3139.