Question

A man drops a 15 kg rock from the top of a 2 m ladder . What will be its kinetic energy, when it reaches the ground ? what will be its speed just before it hits the ground ?

Answer 1

Answer:

Explanation:

s we know that when there is a free fall of an object,the decrease in potential energy at any point on its path,appears as an equal amount of increase in its kinetic energy ...because by the law of conservation of energy energy can neither be destroyed nor be created.

mechanical energy=kinetic +potential

(mass=10kg,g=10m/s^2,h=5m)

potential energy at the top(maximum)=mgh                          

                                                          =10X10X5

                                                          =500J

kinetic energy when it reaches the ground(maximum)=1/2mv^2

                                                                                    =1/2*10*v^2

    potential energy=kinetic energy            (law of conservation of energy)

                     500J=500J

                             

therefore,kinetic energy=500J

               THE SPEED JUST BEFORE IT HITS THE GROUND  IS-

                            1/2*10*V^2=500

                                          V^2=500/5

                                         V=10

THEREFORE V=10