The distance x moved by a body of mass 0.5 kg under the action of a force varies with time t as`x(m)=3t^(2)+4t+5` Here, t is expressed in second. What is the work done by the force in first 2 seconds?

The distance x moved by a body of mass 0.5 kg under the action of a fo

1.	The distance x moved by a body of mass 0.5 kg under the action of a force varies with time t as`x(m)=3t^(2)+4t+5` Here, t is expressed in second. What is the work done by the force in first 2 seconds?
Answer» From the displacement equation, one can determine the expression for force acting on the object It has been calculated below `x=3t^(2)+4t+5` Differentiating once, w.r.t. time, we get `(dx)/(dt)=6t+4 or` `v=6t+4` Differentiating again, w.r.t. time we get `(dv)/(dt)=6` `impliesa=6 m//s^(2)` So, the force is `F=ma=0.5xx6=3N` The body m oves in a straight line and positive sign in force and velocity for the interval `0-2` shows that the angle between force and displacement is `0^(@).` The displacement `S=x_(2)-x_(g)` `=[3(2)^(2)+4(2)+5]-[3(0)^(2)+4(0)+5]` `=12+8+5-5=20m` So, work done is `W=3xx20=60J`

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The distance x moved by a body of mass 0.5 kg under the action of a force varies with time t as`x(m)=3t^(2)+4t+5` Here, t is expressed in second. What is the work done by the force in first 2 seconds?

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