TY - JOUR
T1 - GRAVITATIONAL COLLAPSE OF MAGNETIZED CLOUDS. I. IDEAL MAGNETOHYDRODYNAMIC ACCRETION FLOW
AU - GALLI, Daniele
AU - LlZANO, Susana
AU - SHU, Frank H.
AU - ALLEN, Anthony
PY - 2006/8/10
Y1 - 2006/8/10
N2 - We study the self-similar collapse of an isothermal magnetized rotating cloud in the ideal magnetohydrodynamic (MHD) regime. In the limit of small distance from the accreting protostar, we find an analytic solution that corresponds to free fall onto a central mass point. The density distribution is not spherically symmetric but depends on the mass loading of magnetic field lines, which can be obtained by matching our inner solution to an outer collapse solution previously computed by Allen et al. The concentration of magnetic field trapped by the central mass point under field freezing, independent on the details of the starting state, creates a split-monopole configuration in which the magnetic field strength increases as the inverse square of the distance from the center. Under such conditions, the inflow eventually becomes sub-Alfvènic and the outward transfer of angular momentum by magnetic braking very efficient, thus preventing the formation of a centrifugally supported disk. Instead, the azimuthal velocity of the infalling gas decreases to zero at the center, and the gas spirals into the star. Therefore, the dissipation of dynamically important levels of magnetic field is a fundamental requisite for the formation of protoplanetary disks around young stars.
AB - We study the self-similar collapse of an isothermal magnetized rotating cloud in the ideal magnetohydrodynamic (MHD) regime. In the limit of small distance from the accreting protostar, we find an analytic solution that corresponds to free fall onto a central mass point. The density distribution is not spherically symmetric but depends on the mass loading of magnetic field lines, which can be obtained by matching our inner solution to an outer collapse solution previously computed by Allen et al. The concentration of magnetic field trapped by the central mass point under field freezing, independent on the details of the starting state, creates a split-monopole configuration in which the magnetic field strength increases as the inverse square of the distance from the center. Under such conditions, the inflow eventually becomes sub-Alfvènic and the outward transfer of angular momentum by magnetic braking very efficient, thus preventing the formation of a centrifugally supported disk. Instead, the azimuthal velocity of the infalling gas decreases to zero at the center, and the gas spirals into the star. Therefore, the dissipation of dynamically important levels of magnetic field is a fundamental requisite for the formation of protoplanetary disks around young stars.
KW - ISM: couds
KW - ISM: magnetic helds
KW - MHD
KW - Planetary systems: protoplanetary disks
KW - Stars: formation
UR - https://www.scopus.com/pages/publications/33748442180
UR - https://www.scopus.com/record/pubmetrics.uri?eid=2-s2.0-33748442180&origin=recordpage
U2 - 10.1086/505257
DO - 10.1086/505257
M3 - RGC 21 - Publication in refereed journal
SN - 0004-637X
VL - 647
SP - 374
EP - 381
JO - Astrophysical Journal
JF - Astrophysical Journal
IS - 1
ER -