TY - JOUR
T1 - Early Planet Formation in Embedded Disks (eDisk). XIX. Structures of Molecular Outflows
AU - eDisk team
AU - Feeney-Johansson, Anton
AU - Aikawa, Yuri
AU - Takakuwa, Shigehisa
AU - Ohashi, Nagayoshi
AU - Plunkett, Adele
AU - Jørgensen, Jes K.
AU - Shang, Hsien
AU - Li, Zhi Yun
AU - Sharma, Rajeeb
AU - Kwon, Woojin
AU - Lee, Jeong Eun
AU - Looney, Leslie W.
AU - Yang, Yao Lun
AU - Narang, Mayank
AU - de Gregorio-Monsalvo, Itziar
N1 - A.F.-J. was supported by the NAOJ ALMA Scientific Research grant code 2019-13B. Y.A. acknowledges support by Grant-in-Aid for Transformative Research Areas (A) grant Nos. 20H05844 and 20H05847 and JSPS KAKENHI grant No. 24K00674. S.T. acknowledges the support by JSPS KAKENHI grant Nos. JP21H00048, JP21H04495, JP24K00674, and by NAOJ ALMA Scientific Research grant No. 2022-20A. N.O. and M.N. acknowledge support from the National Science and Technology Council (NSTC) in Taiwan through the grant NSTC 113-2112-M-001-037 and 114-2112-M-001-019, and the Academia Sinica Investigator Project Grant (AS-IV-114-M02). L.W.L. acknowledges support from NSF AST-2108794. Y.-L.Y. acknowledges support from Grant-in-Aid from the Ministry of Education, Culture, Sports, Science, and Technology of Japan (20H05844 and 25H00676). W.K. is supported by the National Research Foundation of Korea (NRF) grant funded by the Korea government (MSIT; RS-2024-00342488). R.S acknowledges support from the Independent Research Fund Denmark (grant No. 0135-00123B).This paper makes use of the following ALMA data: ADS/JAO.ALMA#2019.1.00261.L, and #2019.A.00034.S. ALMA is a partnership of ESO (representing its member states), NSF (USA), and NINS (Japan), together with NRC (Canada), NSTC and ASIAA (Taiwan), and KASI (Republic of Korea), in cooperation with the Republic of Chile. The Joint ALMA Observatory is operated by ESO, AUI/NRAO and NAOJ.
PY - 2026/3/2
Y1 - 2026/3/2
N2 - As part of the ALMA Large Program “Early Planet Formation in Embedded Disks,” 12CO (2–1) was observed towards 19 nearby low-mass protostars. Of these objects, 15 sources are found to show molecular outflow emission. Based on their morphological and kinematical structures, the CO outflows are classified into three types: a wind-driven shell, where ambient material is swept up by a wide-angle wind from the star, a bow shock, and a slow disk wind, which is a conical or parabolic flow with onion-like velocity structure. We categorize 11 outflows as a slow disk wind, 7 as a wind-driven shell, and 1 as a bow shock. Four of these outflows were found to show signs of both slow disk wind and wind-driven shell characteristics. Five objects show misalignment between the red- and blueshifted outflows. Seven objects show significant misalignment between the outflow axis (either or both of the red- and blueshifted outflows) and the minor axis of the dust continuum emission around the protostar. For the objects showing wind-driven shell emission, we compare simple parametrized models with the observations to derive physical properties of the observed shells, such as their dynamical ages. This shows evidence of a time variability in the outflows, such as changes in their direction. In some objects, large differences are seen between the properties of the red- and blueshifted outflows, possibly indicating differences in the properties of the ambient medium with which the outflow interacts.
AB - As part of the ALMA Large Program “Early Planet Formation in Embedded Disks,” 12CO (2–1) was observed towards 19 nearby low-mass protostars. Of these objects, 15 sources are found to show molecular outflow emission. Based on their morphological and kinematical structures, the CO outflows are classified into three types: a wind-driven shell, where ambient material is swept up by a wide-angle wind from the star, a bow shock, and a slow disk wind, which is a conical or parabolic flow with onion-like velocity structure. We categorize 11 outflows as a slow disk wind, 7 as a wind-driven shell, and 1 as a bow shock. Four of these outflows were found to show signs of both slow disk wind and wind-driven shell characteristics. Five objects show misalignment between the red- and blueshifted outflows. Seven objects show significant misalignment between the outflow axis (either or both of the red- and blueshifted outflows) and the minor axis of the dust continuum emission around the protostar. For the objects showing wind-driven shell emission, we compare simple parametrized models with the observations to derive physical properties of the observed shells, such as their dynamical ages. This shows evidence of a time variability in the outflows, such as changes in their direction. In some objects, large differences are seen between the properties of the red- and blueshifted outflows, possibly indicating differences in the properties of the ambient medium with which the outflow interacts.
UR - https://www.scopus.com/pages/publications/105034089717
UR - https://www.scopus.com/pages/publications/105034089717#tab=citedBy
U2 - 10.3847/1538-3881/ae3135
DO - 10.3847/1538-3881/ae3135
M3 - Article
AN - SCOPUS:105034089717
SN - 0004-6256
VL - 171
JO - Astronomical Journal
JF - Astronomical Journal
IS - 3
M1 - 172
ER -