An object is thrown up with a speed of 50 m/s. Its
height from the ground after 7 s is [Take g = 10 m/s2
Answers
Answer:
Let us first consider first part of motion i.e. when it reaches the highest point
u = 50 m/s
g = -10 m/s^2(for ease of calculation u can also take it as 9.8 which would be more precise) Note - negative sign comes because the direction of velocity and acceleration due to gravity are opposit
v = 0 (as it comes to rest at topmost point)
Applying
2gh = v^2 - u^2
We get, h = 125 m
Now, applying,
v = u+gt, we get -
t = 5 s
So after 5 seconds , the ball will reach its maximum height.
Now for downward journey, remaining seconds = 7 s - 5 s = 2 s
Now, u = 0( coming down from maximum height, it would be at rest initially)
t = 2 s
g = 10 m/s^2
Applying h = ut + 1/2 gt^2 ,we get-
h = 20 m
So the object has traveled 20 m from the topmost point
Therefore it is 125 - 20 meters i.e. 105 meters from the ground.