In the figure the variations of componets of acceleration of particles of mass 1kg is shown w.r.t. time. The initial velocity of the particle is `vec(u)=(-3 hati+4hatj)`m/s. the total work done by the resultant force on the particles in time intervals from t=0 to t=4 seconds is : A. `22.5 J`B. 10 JC. 0D. None of these

In the figure the variations of componets of acceleration of particles

1.	In the figure the variations of componets of acceleration of particles of mass 1kg is shown w.r.t. time. The initial velocity of the particle is `vec(u)=(-3 hati+4hatj)`m/s. the total work done by the resultant force on the particles in time intervals from t=0 to t=4 seconds is : A. `22.5 J`B. 10 JC. 0D. None of these
Answer» Correct Answer - B From given graphs : `a_(x) =(3)/(4)t` and `a_(y) =-((3)/(4)t+1) rArr v_(x) =(3)/(8) t^(2) +C` At `t =0 ,v_(x) = -3 rArr C = -3` :. `v_(x)=(3)/(8)t^(2) -3 rArrdx =((3)/(8)t^(2)-3) dt` ….(1) Similarly , `dy =(-(3)/(8)t^(2)-t+4)dt` ….(2) As `dw =vec F. vecds = vec F.(dx i+xy j)` `:. underset(0) overset(w) int dw = underset(0) overset(4) int[(3)/(4) ti-((3)/(4) t+1)j].x` `[((3)/(8) t^(2)-3)i+(-(3)/(8)t^(2)-t+4) j]dt` `:. W = 10 J` Alternate Solution : Area of the graph , `int a_(x) dt =6=V_((x)f)-(-3) rArr V_((x)f) = 3` and `int a_(y) dt =-10=V_((y)f)-(-4)rArr V_((y)f) = -6` Now work done `= Delta KE = 10 J`.

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