Abstract
It is known that most stars lose mass through stellar wind. Thermal mass loss is impossible
at photospheric and chromospheric temperatures. Coronal temperatures make the thermal
contribution significantly significant, but require additional mechanisms for particle
acceleration from the chromosphere to the corona, such as radiation pressure, MHD,
anomalous strong ambipolar diffusion, or Coulomb acceleration, which go beyond the
hydrostatic model. A comparison of the mass loss rate in the tails of the distribution function
with actual observed values for increasing main-sequence stars, even at coronal
temperatures, indicates an increasing excess of actual mass loss over the gravitational limit.
All stars exhibiting a consistently high mass loss rate exceeding gravitational confinement
can be classified as nonrelativistic white holes. Unlike relativistic white holes, a
nonrelativistic white hole loses matter from its surface due to the hyperthermal acceleration
of atoms above the photosphere.



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