The rocket starts at rest, so its initial velocity is 0. If the burn phase lasts [tex]t[/tex] seconds, then during this interval the rocket's velocity is
[tex]v=at\implies a=\dfrac{30\,\frac{\mathrm m}{\mathrm s}}t[/tex]
and its position is
[tex]x=\dfrac12at^2\implies a=\dfrac{2(49\,\mathrm m)}{t^2}[/tex]
So we have
[tex]\dfrac{30\,\frac{\mathrm m}{\mathrm s}}t=\dfrac{2(49\,\mathrm m)}{t^2}\implies t=3.3\,\mathrm s[/tex]
and the answer is C.
