Modeling of dense granular flows: experiments, numerical simulations and stability...
Astrophysics with LLAMA through providing and integrating (band-9) receiver
IMPACT OF SHEARING ON PARASITE INFESTATION, PERFORMANCE AND HEALTH OF HOLSTEIN ANI...
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Author(s): Show less - |
Kim, Taehyun
;
Gadotti, Dimitri A.
;
Querejeta, Miguel
;
Perez, Isabel
;
Zurita, Almudena
;
Neumann, Justus
;
van de Ven, Glenn
;
Mendez-Abreu, Jairo
;
de Lorenzo-Caceres, Adriana
;
Sanchez-Blazquez, Patricia
;
Fragkoudi, Francesca
;
Martins, Lucimara P.
;
Silva-Lima, Luiz A.
;
Kim, Woong-Tae
;
Park, Myeong-Gu
Total Authors: 15
|
Document type: | Journal article |
Source: | ASTROPHYSICAL JOURNAL; v. 968, n. 2, p. 22-pg., 2024-06-01. |
Abstract | |
Bars drive gas inflow. As the gas flows inward, shocks and shear occur along the bar dust lanes. Such shocks and shear can affect the star formation (SF) and change the gas properties. For four barred galaxies, we present H alpha velocity gradient maps that highlight bar-driven shocks and shear using data from the PHANGS-MUSE and PHANGS-ALMA surveys, which allow us to study bar kinematics in unprecedented detail. Velocity gradients are enhanced along the bar dust lanes, where shocks and shear are shown to occur in numerical simulations. Velocity gradient maps also efficiently pick up H ii regions that are expanding or moving relative to the surroundings. We put pseudo-slits on the regions where velocity gradients are enhanced and find that H alpha and CO velocities jump up to similar to 170 km s-1, even after removing the effects of circular motions due to the galaxy rotation. Enhanced velocity gradients either coincide with the peak of CO intensity along the bar dust lanes or are slightly offset from CO intensity peaks, depending on the objects. Using the Baldwin-Philips-Terlevich BPT diagnostic, we identify the source of ionization on each spaxel and find that SF is inhibited in the high-velocity gradient regions of the bar, and the majority of those regions are classified as a low-ionization nuclear emission-line region (LINER) or composite. This implies that SF is inhibited where bar-driven shear and shocks are strong. Our results are consistent with the results from the numerical simulations that show SF is inhibited in the bar where the shear force is strong. (AU) | |
FAPESP's process: | 22/03703-1 - The spectral fitting technique and its ingredients |
Grantee: | Lucimara Pires Martins |
Support Opportunities: | Research Grants - eScience and Data Science Program - Regular Program Grants |