Title of article :
Simulating Condensational Growth, Evaporation, and Coagulation of Aerosols Using a Combined Moving and Stationary Size Grid
Author/Authors :
Jacobson، نويسنده , , Mark Z.; Turco، نويسنده , , Richard P، نويسنده ,
Abstract :
We present a numerical method of simulating the
aerosol processes of coagulation, condensational
growth, and evaporation over a hybrid size grid. In the
hybrid grid, the volume of involatile core material is
constant for each size bin, but the volume of volatile
material fluctuates. Since particles in each bin grow
and evaporate at their own pace, particles from one bin
can obtain the same vOlume as those from another bin
while maintaining different composition. Similarly,
particles from different bins that grow to the same size
can evaporate back to their respective original core
sizes. Allowing independent growth of particles inhibits
numerical diffusion since particles in each bin grow or
evaporate to their actual sizes. When two particles
coagulate, they form a new particle with core volume
between the core volumes of particles in two other bins. We partition the new particle and its total volume
between these two bins. Similarly, we adapt other processes,
such as nucleation, emissions, and transport to
tbe hybrid grid structure. The condensational growth
equations developed conserve mass between the gas
phase and size-distributed aerosol phase. Because the
equations result in sparse matrices of partial derivatives,
SMVGEAR, a sparse-matrix Gear-type integrator,
solves them quickly. Furthermore, the semi-implicit
coagulation equations used here conserve volume
exactly, are absolutely stable, and require no iteration.
Finally, we compared model solutions to both analytical
and other integrated numerical solutions. To obtain
numerical solutions, we developed and integrated equations
that simulate simultaneous coagulation and
growth of multicomponent particles.