Answer:
  t = 0.24 s
Explanation:
As seen in the attached diagram, we are going to use dynamics to resolve the problem, so we will be using the equations for the translation and the rotation dyamics:
Translation:  ΣF = ma
Rotation:    ΣM = Iα ; where α = angular acceleration
Because the angular acceleration is equal to the linear acceleration divided by the radius, the rotation equation also can be represented like:
          ΣM = I(a/R)
Now we are going to resolve and combine these equations.
For translation: Â Â Fx - Ffr = ma
We know that Fx = mgSin27°, so we substitute:
     (1)         mgSin27° - Ffr = ma Â
For rotation:     (Ffr)(R) = (2/3mR²)(a/R)
The radius cancel each other:
    (2)         Ffr = 2/3 ma
We substitute equation (2) in equation (1):
              mgSin27° - 2/3 ma = ma
              mgSin27° = ma + 2/3 ma
The mass gets cancelled:
              gSin27° = 5/3 a
              a = (3/5)(gSin27°)
              a = (3/5)(9.8 m/s²(Sin27°))
              a = 2.67 m/s²
If we assume that the acceleration is a constant we can use the next equation to find the velocity:
              V = √2ad; where  d = 0.327m
              V = √2(2.67 m/s²)(0.327m)
              V = 1.32 m/s
Because V = d/t
               t = d/V
               t = 0.327m/1.32 m/s
               t = 0.24 s
