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Question

A car moves with a variable acceleration given by a=tan−1(t) where t is the time in seconds. the velocity of the car after 10 seconds, if it was initially at rest

A
10tan1(10)12ln|100|
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B
10tan1(1+102)12ln|100|
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C
tan1(10)12ln|100|
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D
10tan1(10)12ln|101|
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Solution

The correct option is D 10tan1(10)12ln|101|
We are given that the car was initially at rest. So the velocity, v, at time t = 0 is zero .
v(0) = 0
We know that acceleration is the rate of change of velocity
Or, dvdt=a=tan1(t).To find v, we will integrate acceleration.
We have dv=tan1(t)dt
v(t)=tan1(t)dt
We solved this integral before. To solve that we apply integration by partial fraction in the following way
tan1(t)dt=(tan1(t)×1)dt
=tan1(t)1dt[ddt(tan1(t)1dt]dt
=tan1(t)t11+t2tdt
=ttan1(t)122t1+t2dt
In the second term, if substitute, u=1+t2, du=2t dt, which is the numerator. So we get
tan1(t)dt=t.tan1(t)12duu
=ttan1(t)12ln|u|
Substituting back u = 1+t2
tan1(t)dt=ttan1(t)12ln|1+t2|+c
v(t)=t tan1(t)12ln|1+t2|+c
We have v(0)=0
c=0
Velocity at t =10,
v(10)=10tan1(10)(12ln|1+100|


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