In this post, we have solved numerical problems related to Vertical Motion, specifically when a ball is thrown vertically upwards.
A Ball is thrown vertically upwards – physics numerical (solved)
Q1) A ball is thrown vertically upwards with a velocity of 49 m/s. Calculate (1) The maximum height to which it rises. (2) The total time it takes to return to the surface of the earth.
Solution:
Problem-Data given
- Initial velocity of the ball = u = 49m/s.
- The velocity of the ball at maximum height = v = 0.
- g = 9.8m/s2
We have to Find out
1) The maximum height to which it rises.
2) The total time it takes to return to the surface of the earth.
Solving the problem:
Say, the time to reach the maximum height H is t
Consider a formula for upward motion with retardation,
v2 = u2 – 2gH
=> 0 = (49)2 – 2 × 9.8 × H
2 × 9.8 × H = (49)2
19.6 H = 2401
H = 122.5 m
Now consider the below-mentioned formula for the upward motion with retardation,
v = u – g × t
=> 0 = 49 – 9.8 × t
=> 9.8t = 49
t = 5 sec
Answer:
1) The maximum height to which it rises: H = 122.5 m
2) The total time it takes to return to the surface of the earth: t= 5 sec
A Ball is thrown vertically upward – physics numerical (solved)
Q2) When a ball is thrown vertically upwards, it goes through a distance of 19.6 m. Find the initial velocity of the ball and the time taken by it to rise to the highest point. (Acceleration due to gravity, g=9.8 ms-2)
Solution:
Distance traveled =s=19.6 m
We know that the velocity at the highest v = 0
say, initial velocity = u m/s & the time taken to rise to the highest point = t sec
Using the following equation of motion with retardation, we can find the initial velocity = u
v2=u2– 2gs
=> 0 = u2 – 2 x 9.8 x 19.6
=> u2=19.6 x 19.6
u = 19.6 m upwards
Now we will find out the the time taken to rise to the highest point (t):
v = u – gt
=> 0 = u – gt
=> t = u/g = 19.6/9.8 s = 2 seconds
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