Fragmentation and tidal locking in young quadruple systems
Xunchuan Liu
Abstract
Young quadruple systems provide a particularly simple setting in which the connection between successive levels of fragmentation can be studied. Motivated by the recurring symmetric configurations observed in a small number of young systems, we propose a theoretical framework in which such configurations arise naturally during rapid collapse. Rotational fragmentation followed by secondary fragmentation can produce two comparable-mass components of a wide pair, each of which further fragments into an unequal-mass close pair. The combination of tidal forces and accretion-driven shear can then establish a preferred phase relation, with the lower-mass component located on the inner, preceding side of the higher-mass component in each close pair. During subsequent capture, this phase relation can shift, placing the lower-mass component on the inner, trailing side. Asymmetric partitioning of a coherent, rapidly accreting flow can also tilt the spin axes of the fragments, providing a possible origin for spin misalignments without requiring an initially incoherent large-scale flow. The proposed mechanism therefore provides a possible physical origin for the characteristic phase relations in young quadruple configurations and for stochastic spin orientations within star clusters.
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