Atmospheric Dispersion with a Large-Eddy Simulation
267
Kemp, J.R. and D.J. Thompson. 1996. Dispersion in stable boundary layers using large eddy
simulation. Atmos. Environ. 30: 2911–2923.
Lacorata, G., E. Aurell, and A. Vulpiani. 2001. Drifter dispersion in the Adriatic Sea: Lagrangian
data and chaotic model. Ann. Geophys. 19: 121–129.
Lamb, R.G. 1978. A numerical simulation of dispersion from an elevated point source in a
convective planetary boundary layer. Atmos. Environ. 12: 1297–1304.
Lamb, R.G. 1979. The effects of release height on material dispersion in the convective planetary boundary layer. Reno NV: AMS Fourth Symposium on Turbulence, Diffusion and
Air Pollution.
Lamb, R.G. 1981. A numerical investigation of tetroon versus fl uid particle dispersion in the
convective planetary boundary layer. J. Appl. Meteorol. 20: 391–403.
Long, P.E. and D.W. Pepper. 1981. An examination of some simple numerical schemes for
calculating scalar advection. J. Appl. Meteorol. 20: 146–156.
Marcuk, N.N. 1984. Metodi del Calcolo Numerico. Roma: Editori Riuniti.
Mc Rae, G.J., W.r. Goodin, and J.H. Seifeld. 1982. Numerical solution of the atmospheric diffusion equation for chemically reacting fl ows. J. Comput. Phys. 45: 1–42.
Meeder, J.P. and F.T.M. Nieuwstadt. 2000. Large eddy simulation of the turbulent dispersion
of a reacting plume from a point source into a neutral boundary layer. Atmos. Environ.
34: 3563–3573.
Moeng, C.H. 1984. Large eddy simulation model for the study of planetary boundary layer
turbulence. J. Atmos. Sci. 41: 2052–2062.
Moeng, C.H. and P.P. Sullivan. 1994. A comparison of shear and buoyancy driven planetary
boundary layer fl ows. J. Atmos. Sci. 51: 999–1022.
Moeng, C.H. and J.C. Wyngard. 1988. Spectral analysis of large eddy simulation of the convective boundary layer. J. Atmos. Sci. 45: 3573–3587.
Moninger, W.R., Eberhard, W.L., Briggs, G.A., Kropfl i, R.A., and Kaimal, J.C. 1983.
Simultaneous radar and lidar observations of plumes from continuous point sources, in
21st Conference on Radar Meteorology. Amer. Meterol. Soc., Boston, pp. 246–250.
Nieuwstadt, F.T.M. 1981. The steady-state height and resistance laws of the nocturnal boundary layer: Theory compared with Cabauw observations. Bound. Layer Meteorol. 20:
3–17.
Nieuwstadt, F.T.M. and J.P.M.M. De Valk. 1987. A large eddy simulation of buoyant and
non-buoyant plume dispersion in the atmospheric boundary layer. Atmos. Environ. 21:
2573–2587.
Ott, S. and J. Mann. 2000. An experimental investigation of the relative diffusion of particle
pairs in three-dimensional turbulent fl ow. J. Fluid Mech. 422: 207–223.
Pielke R.A. 1984. Mesoscale Meteorological Modelling. San Diego, CA: Academic Press.
Price, G.V. and A.K. Mac Pherson. 1973. A numerical weather forecasting method using cubic
splines on a variable mesh. J. Appl. Meteorol. 12: 1102–1113.
Reynolds, O. 1895. On the dynamical theory of turbulent incompressible viscous fl uids and
determination of the criterion. Phil. Trans. R. Soc. Lond A. 186: 123–161.
Rizza, U., G. Gioia, C. Mangia, and G.P. Marra. 2003. Development of a grid-dispersion
model in a large eddy simulation generated planetary boundary layer. Nuovo Cimento
Sez. C 26: 297–309.
Rizza, U., C. Mangia, J.C. Carvalho, and D. Anfossi. 2006. Estimation of the Lagrangian
velocity structure function constant C 0 by large eddy simulation. Bound. Layer Meteorol.
120: 25–37.
Sorbjan, Z. and M. Uliasz. 1999. Large-eddy simulation of air pollution dispersion in the nocturnal cloud-topped atmospheric boundary layer. Bound. Layer Meteorol. 91: 145–157.
Spalart, P.R. and R. Moser. 1991. Spectral methods for the Navier–Stokes equations with the
one-infi nite and two-periodic directions. J. Comput. Phys. 96: 297–312.
© 2010 by Taylor and Francis Group, LLC
267
Kemp, J.R. and D.J. Thompson. 1996. Dispersion in stable boundary layers using large eddy
simulation. Atmos. Environ. 30: 2911–2923.
Lacorata, G., E. Aurell, and A. Vulpiani. 2001. Drifter dispersion in the Adriatic Sea: Lagrangian
data and chaotic model. Ann. Geophys. 19: 121–129.
Lamb, R.G. 1978. A numerical simulation of dispersion from an elevated point source in a
convective planetary boundary layer. Atmos. Environ. 12: 1297–1304.
Lamb, R.G. 1979. The effects of release height on material dispersion in the convective planetary boundary layer. Reno NV: AMS Fourth Symposium on Turbulence, Diffusion and
Air Pollution.
Lamb, R.G. 1981. A numerical investigation of tetroon versus fl uid particle dispersion in the
convective planetary boundary layer. J. Appl. Meteorol. 20: 391–403.
Long, P.E. and D.W. Pepper. 1981. An examination of some simple numerical schemes for
calculating scalar advection. J. Appl. Meteorol. 20: 146–156.
Marcuk, N.N. 1984. Metodi del Calcolo Numerico. Roma: Editori Riuniti.
Mc Rae, G.J., W.r. Goodin, and J.H. Seifeld. 1982. Numerical solution of the atmospheric diffusion equation for chemically reacting fl ows. J. Comput. Phys. 45: 1–42.
Meeder, J.P. and F.T.M. Nieuwstadt. 2000. Large eddy simulation of the turbulent dispersion
of a reacting plume from a point source into a neutral boundary layer. Atmos. Environ.
34: 3563–3573.
Moeng, C.H. 1984. Large eddy simulation model for the study of planetary boundary layer
turbulence. J. Atmos. Sci. 41: 2052–2062.
Moeng, C.H. and P.P. Sullivan. 1994. A comparison of shear and buoyancy driven planetary
boundary layer fl ows. J. Atmos. Sci. 51: 999–1022.
Moeng, C.H. and J.C. Wyngard. 1988. Spectral analysis of large eddy simulation of the convective boundary layer. J. Atmos. Sci. 45: 3573–3587.
Moninger, W.R., Eberhard, W.L., Briggs, G.A., Kropfl i, R.A., and Kaimal, J.C. 1983.
Simultaneous radar and lidar observations of plumes from continuous point sources, in
21st Conference on Radar Meteorology. Amer. Meterol. Soc., Boston, pp. 246–250.
Nieuwstadt, F.T.M. 1981. The steady-state height and resistance laws of the nocturnal boundary layer: Theory compared with Cabauw observations. Bound. Layer Meteorol. 20:
3–17.
Nieuwstadt, F.T.M. and J.P.M.M. De Valk. 1987. A large eddy simulation of buoyant and
non-buoyant plume dispersion in the atmospheric boundary layer. Atmos. Environ. 21:
2573–2587.
Ott, S. and J. Mann. 2000. An experimental investigation of the relative diffusion of particle
pairs in three-dimensional turbulent fl ow. J. Fluid Mech. 422: 207–223.
Pielke R.A. 1984. Mesoscale Meteorological Modelling. San Diego, CA: Academic Press.
Price, G.V. and A.K. Mac Pherson. 1973. A numerical weather forecasting method using cubic
splines on a variable mesh. J. Appl. Meteorol. 12: 1102–1113.
Reynolds, O. 1895. On the dynamical theory of turbulent incompressible viscous fl uids and
determination of the criterion. Phil. Trans. R. Soc. Lond A. 186: 123–161.
Rizza, U., G. Gioia, C. Mangia, and G.P. Marra. 2003. Development of a grid-dispersion
model in a large eddy simulation generated planetary boundary layer. Nuovo Cimento
Sez. C 26: 297–309.
Rizza, U., C. Mangia, J.C. Carvalho, and D. Anfossi. 2006. Estimation of the Lagrangian
velocity structure function constant C 0 by large eddy simulation. Bound. Layer Meteorol.
120: 25–37.
Sorbjan, Z. and M. Uliasz. 1999. Large-eddy simulation of air pollution dispersion in the nocturnal cloud-topped atmospheric boundary layer. Bound. Layer Meteorol. 91: 145–157.
Spalart, P.R. and R. Moser. 1991. Spectral methods for the Navier–Stokes equations with the
one-infi nite and two-periodic directions. J. Comput. Phys. 96: 297–312.
© 2010 by Taylor and Francis Group, LLC
