iv. An iron ball of mass 3 kg is released from a height of 125 m andfa

1.	iv. An iron ball of mass 3 kg is released from a height of 125 m andfalls freely to the ground. Assuming that the value of g is 10 m/s,calculate(i) time taken by the ball to reach the ground(ii) velocity of the ball on reaching the ground(iii) the height of the ball at half the time it takes to reach the ground
Answer» S=125=UT+1/2AT^2as U is =0therefore S=1/2AT^2here A is 10m/s^2therefore 125=1/2AT^2250=10T^2therefore T =√25=5sec V^2-U^2=2AS here A is -10 and S is -125m as its falling from a height and U =0 therefore V^2=2(-10)(-125)V=√2500V=50m/s half time by it reaches =5/2=2.5secS=UT+1/2AT^2S=1/2x10xT^2therefore S=31.25m but H=125-31.25therefore H=93.75m a)The time by which the ball reaches the ground is=5secondsb) The velocity of the ball on reaching the ground=50m/sc) The height of the ball at half time it takes to reach the ground=93.75m

iv. An iron ball of mass 3 kg is released from a height of 125 m andfalls freely to the ground. Assuming that the value of g is 10 m/s,calculate(i) time taken by the ball to reach the ground(ii) velocity of the ball on reaching the ground(iii) the height of the ball at half the time it takes to reach the ground

Answer»

S=125=UT+1/2AT^2as U is =0therefore S=1/2AT^2here A is 10m/s^2therefore 125=1/2AT^2250=10T^2therefore T =√25=5sec

V^2-U^2=2AS

here A is -10 and S is -125m as its falling from a height and U =0 therefore

V^2=2(-10)(-125)V=√2500V=50m/s

half time by it reaches =5/2=2.5secS=UT+1/2AT^2S=1/2x10xT^2therefore S=31.25m

but H=125-31.25therefore H=93.75m

a)The time by which the ball reaches the ground is=5secondsb) The velocity of the ball on reaching the ground=50m/sc) The height of the ball at half time it takes to reach the ground=93.75m

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