Question

A particle of mass is acted upon by a force f for a time t

Answer 1

Answer:

Explanation:

Uniform force F acts during t seconds,

      the change in momentum is = impulse = F * t.

   Initial momentum = 0  => final momentum p = Ft

Kinetic energy = p²/2m = F² t² / 2 m

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initial position of center of mass from the hinge = 1/2 meter

the change in height of center of mass = 1/2 - 1/2 Cos 60 = 1/4 meter

change in potential energy = m g h = 0.5 kg * 10 m/s² * 1/4 m = 5/4 Joules

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gain in kinetic energy =  1/2 m v² = U  = lost energy

    m = 2 U / v²

Answer 2

Secondary SchoolPhysics 5+3 pts

1) A particle of mass m at rest is acted upon by a force F for a time t. Its kinetic energy after an interval t is: {answer should come \frac{ F^{2} t^{2} } {2m}}

2) A rod of length 1 m and mass 0.5 kg hinged at one end, is initially hanging vertical. The other end is now raised slowly until it makes an angle 60^{o} with the vertical. The required work is : {use g = 10 m/ s^{2} }

(answer should come \frac{5}{4} J)

3) A body is dropped from a certain height. When it loses U amount of it energy it acquires a velocity 'v'. The mass of the body is : {answer should come \frac{2U}{ v^{2} } }