The flattening and breakup of an axially symmetric liquid drop in an a
coustic standing wave field in air have been studied using a boundary
integral method. The interaction between the drop and sound field are
crucial to this approach. Our computations are focused on the threshol
d beyond which the drop loses its static equilibrium, and on the dynam
ic behavior after it loses its equilibrium up to the point when it bre
aks up. The numerical results are given in terms of drop size and the
strength of sound field and are found to be in good agreement with the
measurements of others. (C) 1995 American Institute of Physics.