A particle of mass 3kg has been acted upon by a force F(N) whose variation with time (s) is shown in the figure.
If the particle is moving along a straight line with initial velocity of 4m/s, then find the final velocity of the particle.
A
5.33m/s
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B
2m/s
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C
14.5m/s
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D
8.83m/s
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Solution
The correct option is D8.83m/s From the impulse-momentum theorem: Impulse J=∫Fdt=ΔP....(i) where ΔP=Pf−Pi ∫Fdt=Area underF−tgraph Area under graph =(4×3)+(12×3×3)−(12×2×2) ∴Area=14.5Ns Now, Pf=mvf=3×vf Pi=mvi=3×4=12Ns Hence, from Eq (i): 14.5=(3×vf)−12 ∴vf=26.53=8.83m/s