If a particle has velocity v(t)=t2−7t+12, the average speed in 6sec is
A
506m/s
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B
5518m/s
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C
6118m/s
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D
436m/s
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Solution
The correct option is B5518m/s Given, v(t)=t2−7t+12, we will check if the particle has changed its direction or not within the asked time interval, i.e. the time when velocity of the particle becomes zero. ⇒t2−7t+12=0⇒(t−3)(t−4)=0⇒t=3,4sec
Also, we know that xf−xi=∫t0v(t)dt=∫t0(t2−7t+12)dt ⇒xf−xi=t33−7t22+12t
Let particle starts from origin i.e xi=0
So, at t=0,xf=0,
at t=3,xf=333−7×322+12×3=272m
at t=4,xf=433−7×422+12×4=403m
at t=6,xf=633−7×622+12×6=18m
The motion of the particle can be represented as shown
So, the average speed of the particle is 272+(272−403)+(18−403)6=5518m/s