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The effects of dynamical substructure on Milky Way mass estimates from the high velocity tail of the local stellar halo
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abstract
We investigate the impact of dynamical streams and substructure on estimates of the local escape speed and total mass of Milky Way-mass galaxies from modelling the high velocity tail of local halo stars. We use a suite of high-resolution, magneto-hydrodynamical cosmological zoom-in simulations, which resolve phase space substructure in local volumes around solar-like positions. We show that phase space structure varies significantly between positions in individual galaxies and across the suite. Substructure populates the high velocity tail unevenly and leads to discrepancies in the mass estimates. We show that a combination of streams, sample noise and truncation of the high velocity tail below the escape speed leads to a distribution of mass estimates with a median that falls below the true value by $\sim 20 \%$, and a spread of a factor of 2 across the suite. Correcting for these biases, we derive a revised value for the Milky Way mass presented in Deason et al. of $1.29 ^{+0.37}_{-0.47} \times 10^{12}$ $\rm M_{\odot}$.
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Cited by 1 Pith paper
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A Lower Limit on the Mass of Our Galaxy from the H3 Survey
From the timing argument applied to 32 outer halo stars, the Milky Way's M200 is constrained to exceed 0.91 x 10^12 solar masses at 90% confidence.
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