Physics, asked by paliwal5720, 1 year ago

A ball is thrown up vertically returns to the thrower after 6 seconds .Find(a) the velocity with which it was thrown up,(b) the maximum height it reaches , and(C) it's position after 4 seconds.

Answers

Answered by marcusdemantes2002
2

a)

Time taken to return to the thrower is 2u/g.

2u/g = 6

u = 30 m/s.

b)

v^2 - u^2 = 2as

0 - 900 = -2*10*s (as u = 30 m/s from above)

s = 45 m

c)

s = ut + at*t/2

s = 30*4 - 10*16/2

s = 120 - 80

s = 40 m

Hope it helps ;-)

Answered by Anonymous
9

_/\_Hello mate__here is your answer--

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The ball takes a total of 6 s for its upward and downward journey. (Time of ascent is equal to the time of descent.)

Hence, it has taken 3 s to reach at the maximum height.

v = 0 m/s

g = −9.8 ms−2

Using equation of motion,

v = u + at

⇒0 = u + (−9.8 × 3)

⇒ u = 9.8 × 3 = 29.4 m/s

Hence, the ball was thrown upwards with a velocity of 29.4 m/s.

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Let the maximum height attained by the ball be h.

u = 29.4 m/s

v = 0 m/s

g = −9.8 ms−2 (upward direction)

Using the equation of motion,

s = ut +1/2 gt^2

⇒ hℎ = 29.4 × 3 −1/2 × 9.8 × 32

⇒ ℎh = 44.1 m

Hence, the maximum height is 44.1 m.

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Ball attains the maximum height after 3 s. After attaining this height, it will start falling downwards.

In this case,

u = 0 m/s

Position of the ball after 4 s − 3 s = 1 s can calculate by Using the equation of motion,

s= ut +1/2gt^2

⇒ h= 0 × 1 +1/2 × 9.8 × 12

⇒ h= 4.9 m

Now, total height = 44.1 m This means, the ball is 39.2 m (44.1 m − 4.9 m) above the ground after 4 seconds.

I hope, this will help you.☺

Thank you______❤

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