The development of the Ehl field in pulsed solid-state lasers is analyzed w
ith a two-dimensional fast-Fourier transform computational model. The model
is designed to enable on-line characterization of the EM field starting fr
om a randomly generated initial spontaneous field. The temporal variation o
f the laser beam quality together with the power spiking behavior is studie
d, showing sharp brightness peaks at the beginning of the fret generated la
ser pulse. The instantaneous beam pattern is followed throughout the laser
pulse duration. Some important characteristics of the formation of resonato
r modes are given and the influence of the mode competition on the formatio
n of typical patterns in the integrated beam is analyzed. Intensity pattern
oscillations which can be attributed to the previously observed vortex for
mation were clearly detected, showing well-defined oscillation frequencies
of the local EM field, unrelated to transverse intermode beat frequencies.
Experiments were carried out on an Er:YAG laser confirming the beam pattern
formation and showing good agreement with the computational model.