Answer:
147.77 m/s
Step-by-step explanation:
I believe the question you're trying to ask is, "what is the initial speed of the bullet"
Assuming that work is done by friction, then we have
W(others) = W(f) = [f(k).cosΦ.s] = -f(k).s = -μ(k).m.g.s
Since there's no work done by gravity, U₁ = U₂ = 0
By the time the block comes to rest, K₁ = ½mv² while K₂ = 0
This then mean that
½mv² - μ(k).m.g.s = 0
½v² = μ(k).g.s
v² = 2μ(k).g.s
v = √[2μ(k).g.s]
Solving for v, we have
v = √(2 * 0.2 * 9.8 * 0.31)
v = √1.2152
v = 1.10 m/s
Finally, using law of conservation of momentum equation, we have
V(a) = [(m(a) + m(b) / m(a)] * V
V(a) = [(0.009 + 1.2) / 0.009] * 1.1
V(a) = [1.209 / 0.009] * 1.1
V(a) = 134.333 * 1.1
V(a) = 147.77 m/s