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Rotationally-Driven Fragmentation for the Formation of the Binary Protostellar System L1551 IRS 5

2 Pith papers cite this work. Polarity classification is still indexing.

2 Pith papers citing it
abstract

Either bulk rotation or local turbulence is widely invoked to drive fragmentation in collapsing cores so as to produce multiple star systems. Even when the two mechanisms predict different manners in which the stellar spins and orbits are aligned, subsequent internal or external interactions can drive multiple systems towards or away from alignment thus masking their formation process. Here, we demonstrate that the geometrical and dynamical relationship between the binary system and its surrounding bulk envelope provide the crucial distinction between fragmentation models. We find that the circumstellar disks of the binary protostellar system L1551 IRS 5 are closely parallel not just with each other but also with their surrounding flattened envelope. Measurements of the relative proper motion of the binary components spanning nearly 30 yr indicate an orbital motion in the same sense as the envelope rotation. Eliminating orbital solutions whereby the circumstellar disks would be tidally truncated to sizes smaller than are observed, the remaining solutions favor a circular or low-eccentricity orbit tilted by up to $\sim$25$^\circ$ from the circumstellar disks. Turbulence-driven fragmentation can generate local angular momentum to produce a coplanar binary system, but which bears no particular relationship with its surrounding envelope. Instead, the observed properties conform with predictions for rotationally-driven fragmentation. If the fragments were produced at different heights or on opposite sides of the midplane in the flattened central region of a rotating core, the resulting protostars would then exhibit circumstellar disks parallel with the surrounding envelope but tilted from the orbital plane as is observed.

fields

astro-ph.SR 2

years

2026 1 2022 1

verdicts

UNVERDICTED 2

representative citing papers

Formation of a Protostellar Multiple System via Rotational Fragmentation

astro-ph.SR · 2026-06-24 · unverdicted · novelty 7.0

Multi-scale observations of dense core G205.46-14.56-N2 show a quadruple protostellar system whose symmetry, outflows, and kinematics match simulations of rotational fragmentation, providing the first claimed evidence for this pathway in high-order multiples.

The Origin and Evolution of Multiple Star Systems

astro-ph.SR · 2022-03-18 · unverdicted · novelty 2.0

A review summarizing population statistics, origin models, disk properties, and open questions on stellar multiplicity from protostellar to main-sequence phases.

citing papers explorer

Showing 2 of 2 citing papers.

  • Formation of a Protostellar Multiple System via Rotational Fragmentation astro-ph.SR · 2026-06-24 · unverdicted · none · ref 6 · internal anchor

    Multi-scale observations of dense core G205.46-14.56-N2 show a quadruple protostellar system whose symmetry, outflows, and kinematics match simulations of rotational fragmentation, providing the first claimed evidence for this pathway in high-order multiples.

  • The Origin and Evolution of Multiple Star Systems astro-ph.SR · 2022-03-18 · unverdicted · none · ref 207

    A review summarizing population statistics, origin models, disk properties, and open questions on stellar multiplicity from protostellar to main-sequence phases.