A particle moves according to the equation x=2t2−5t+6 where, x is in m. Find (i) average velocity in the first 3s, and (ii) instantaneous velocity at t=3s.
A
1m/s,7m/s
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B
4m/s,3m/s
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C
2m/s,5m/s
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D
3m/s,7m/s
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Solution
The correct option is A1m/s,7m/s Given, x=2t2−5t+6
So, for case (i) we have x|@t=3s=2×(3)2−5×3+6=9m x|@t=0s=2×(0)2−5×0+6=6m ∴ Average velocity in the first 3s is vav=x|@t=3s−x|@t=0s3−0=9−63−0=1m/s
For case (ii) we have
instant velocity, v=dxdt=d(2t2−5t+6)dt=4t−5
So, velocity at t=3s is v=4×3−5=7m/s