Kinematics of Diffuse Ionized Gas Halos: A Ballistic Model of Halo Rotation
Кинематика гало диффузного ионизованного газа: баллистическая модель вращения гало
2002-10-08
SCID: 54.1/89qquaxw
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ballistic cloud trajectoriesdiffuse ionized gashalo rotationspiral galaxiesvertical velocity gradients
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Abstract (AI)
To better understand diffuse ionized gas (DIG) kinematics and halo rotation in spiral galaxies, we have developed a model in which clouds are ejected from the disk and follow ballistic trajectories through the halo. The behavior of clouds in this model has been investigated thoroughly through a parameter space search and a study of individual cloud orbits. Synthetic velocity profiles have been generated in z (height above the plane) from the models for the purpose of comparing with velocity centroid data from previously obtained long-slit spectra of the edge-on spirals NGC 891 (one slit) and NGC 5775 (two slits). In each case, a purely ballistic model is insufficient to explain observed DIG kinematics. In the case of NGC 891, the observed vertical velocity gradient is not as steep as predicted by the model, possibly suggesting a source of coupling between disk and halo rotation or an outwardly directed pressure gradient. The ballistic model more successfully explains DIG kinematics observed in NGC 5775; however, it cannot explain the observed trend of high- z gas velocities nearly reaching the systemic velocity. Such behavior can be attributed to either an inwardly directed pressure gradient or a possible tidal interaction with its companion, NGC 5774. In addition, the ballistic model predicts that clouds move radially outward as they cycle through the halo. The mass and energy fluxes estimated from the model suggest that this radially outward gas migration leads to a redistribution of material that may significantly affect the evolution of the interstellar medium.
Key Findings
1
A ballistic model was developed in which diffuse ionized gas clouds are ejected from galactic disks and follow trajectories through the halo.
2
Ballistic trajectories predict net radial outward cloud migration, with estimated mass and energy fluxes potentially causing substantial interstellar-medium redistribution.
3
For NGC 891, the observed vertical velocity gradient is shallower than predicted, suggesting disk–halo rotational coupling or an outward pressure gradient.
4
Purely ballistic models cannot fully reproduce observed DIG kinematics in either NGC 891 or NGC 5775.
5
The model better reproduces NGC 5775 kinematics but cannot explain high-altitude gas velocities approaching the systemic velocity, possibly indicating inward pressure or tidal interaction with NGC 5774.
Research Object
Diffuse ionized gas clouds ejected from the disks of edge-on spiral galaxies and moving ballistically through their halos
Research Subject
The halo rotation kinematics, vertical velocity gradients, radial migration, and disk–halo coupling of the diffuse ionized gas
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2002-10-08
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