We present molecular gas mass estimates for a sample of 13 local galaxies whose kinematic and star forming properties closely resemble those observed in z≈1.5 main-sequence galaxies. Plateau de Bure observations of the CO[1-0] emission line and Herschel Space Observatory observations of the dust emission both suggest molecular gas mass fractions of ~20%. Moreover, dust emission modeling finds Tdust<30K, suggesting a cold dust distribution compared to their high infrared luminosity. The gas mass estimates argue that z∼0.1 DYNAMO galaxies not only share similar kinematic properties with high-z disks, but they are also similarly rich in molecular material. Pairing the gas mass fractions with existing kinematics reveals a linear relationship between fgas and σ/vc, consistent with predictions from stability theory of a self-gravitating disk. It thus follows that high gas velocity dispersions are a natural consequence of large gas fractions. We also find that the systems with lowest depletion times (∼0.5 Gyr) have the highest ratios of σ/vc and more pronounced clumps, even at the same high molecular gas fraction.
@article{arxiv.1707.07005,
title = {Gas Content and Kinematics in Clumpy, Turbulent Star-forming Disks},
author = {Heidi A. White and David B. Fisher and Norman Murray and Karl Glazebrook and Roberto G. Abraham and Alberto D. Bolatto and Andrew W. Green and Erin Mentuch Cooper and Danail Obreschkow},
journal= {arXiv preprint arXiv:1707.07005},
year = {2017}
}