The arrow is subject to the constant downward pull of gravity, so its vertical position over time is given by
[tex]y=44\,\mathrm{ft}+\left(224\,\dfrac{\mathrm{ft}}{\mathrm s}\right)t+\dfrac12\left(-32.1\,\dfrac{\mathrm{ft}}{\mathrm s^2}\right)t^2[/tex]
We want to find [tex]t[/tex] for which [tex]y=824\,\mathrm{ft}[/tex]. You should find two solutions at [tex]t=6.67\,\mathrm s[/tex] and [tex]t=7.29\,\mathrm s[/tex].
