How High Does the Block Go on the Ramp?

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Homework Statement



A block of mass 5.00 kg is given an initial velocity of 8.0 m/s. It travels 5.0 m over a rough surface with μ[itex]_{k}[/itex] = 0.250. It then slides up a ramp that rises at a 30° angle above the horizontal. How high does it go before coming to rest


Homework Equations



W = FΔs
F[itex]_{k}[/itex] = μ[itex]_{k}[/itex] N
Δk = 1/2 m v[itex]_{f}[/itex][itex]^{2}[/itex] - 1/2 m v[itex]_{i}[/itex][itex]^{2}[/itex]
v = √2gh

The Attempt at a Solution



W = μ[itex]_{k}[/itex] Δs = (0.25)(5)(9.8)(5) = 61.25 J

-61.25 = Δk
-61.25 = 1/2 m v[itex]_{f}[/itex][itex]^{2}[/itex] - 1/2 m v[itex]_{i}[/itex][itex]^{2}[/itex]
-61.25 = 2.5 v[itex]_{f}[/itex][itex]^{2}[/itex] - (0.5)(5)(8[itex]^{2}[/itex]
v[itex]_{f}[/itex] = √((-61.25+160)/2.5)

v = √2gh
h = v[itex]^{2}[/itex]/2gh
h = 6.28[itex]^{2}[/itex]/(2)(9.8)
h = 2.01m


Is this the right way to answer this question?
 
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is the ramp frictionless or is it also a rough surface? It looks like you assumed that it is frictionless, but I guess it makes sense to do that since it doesn't specify that in the problem.

But yes, assuming the ramp is frictionless, it looks like you did it right.
 
I believe the ramp is frictionless but the one thing that bothers me about my solution is the lack of the 30° angle in my calculations.
 
yeah that would be a piece of extraneous information for this problem

since you are using conservation of energy, the path that the object takes doesn't matter, only the initial and final states