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Question

A streetcar moves rectilinearly from station A to the next station B with an acceleration varying according to the law f=abx, where a and b are constant, and x is the distance from station A. The distance between the two stations and maximum velocity are

A
x=2ab, vmax=ab
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B
x=b2a, vmax=ab
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C
x=a2b, vmax=ba
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D
x=ab, vmax=ab
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Solution

The correct option is A x=2ab, vmax=ab
Acceleration of car, f=abx
Since acceleration, f=vdvdx
vdvdx=abx
or vdv=(abx)dx
or v22=axbx22(1)
v=2axbx2
For v to be maximum, dvdx=0
ddx(2axbx2)=2a2bx22axbx2=0
2a2bx=0
x=ab
Substituting the x=ab in equation (1)
v2max2=aabb(ab)22=a22b
vmax=ab
Car will be at rest when velocity is zero, v=0.
Using equation (1), we get
axbx22=0
x=2ab
Distance between two stations =2ab

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