A constant force acts on an object of mass 5 kg for a duration of 2 s. It increases the object's velocity from 3 m s^(-1) to 7 m s^(-1). Find the magnitude of the applied force. Now, if the force was applied for a duration of 5 s, what would be the final velocity of the object ?

A constant force acts on an object of mass 5 kg for a duration of 2 s.

1.	A constant force acts on an object of mass 5 kg for a duration of 2 s. It increases the object's velocity from 3 m s^(-1) to 7 m s^(-1). Find the magnitude of the applied force. Now, if the force was applied for a duration of 5 s, what would be the final velocity of the object ?
Answer» Solution :We have been GIVEN that u = 3 `ms^(-1)` and v = 7 `ms^(-1), t = 2` s and m = 5 kg. From Eq. we have, `F = (m(v-u))/(t)` Substitution of values in this relation gives `F = (5kg(7ms^(-1) - 3MS^(-1))/(2s) = 10N` Now, if this force is APPLIED for a duration of 5 s (t = 5 s), then the final velocity can be CALCULATED by rewriting Eq. as `v = u + (Ft)/(m)` On substituting the values of u, F, m and t, we get the final veloctiy, `v = 13ms^(-1)`

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A constant force acts on an object of mass 5 kg for a duration of 2 s. It increases the object's velocity from 3 m s^(-1) to 7 m s^(-1). Find the magnitude of the applied force. Now, if the force was applied for a duration of 5 s, what would be the final velocity of the object ?

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