Q.5 A stone is dropped from a balloon going up with a uniform velocity of 10 m/s. If the height of the balloon was 56.25 m when the stone was dropped, then the time after which the stone will strike the ground after it is dropped is [g = 10 m/s2
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consider the motion of the stone in vertical direction
v₀ = initial velocity of stone just after it leaves the balloon = uniform velocity of balloon = 10 m/s
Y₀ = initial position of stone = height of balloon when stone leaves = 56.25 m
Y = final position of the stone when at ground = 0 m
a = acceleration of stone = g = acceleration due to gravity = - 10 m/s²
t = time of travel for stone before it strikes the ground
Using the kinematics equation
Y = Y₀ + v₀ t + (0.5) a t²
inserting the above values in the equation
0 = 56.25 + 10 t + (0.5) (- 10) t²
t = 4.5 sec
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