Physics, asked by davinder56, 11 months ago

a ball thrown up vertically returns to the thrower after six seconds. find the velocity with which it was thrown up ,the maximum hight it reaches, and the position after four seconds ​

Answers

Answered by charrith
0

Answer:

6m

Explanation:

because of positioning

plz mark brainliest plz

Answered by Anonymous
0

Answer:

Explanation:

The ball returns to the ground after 6 seconds.

Thus the time taken by the ball to reach to the maximum height (h) is 3 seconds i.e t=3 s

Let the velocity with which it is thrown up be  u

(a). For upward motion,                

v=u+at

∴     0=u+(−10)×3                  

⟹u=30  m/s      

(b). The maximum height reached by the ball

h=ut+  1 /2 at2

h=30×3+  1/2 (−10)×3  2

               

h=45 m  

(c). After 3 second, it starts to fall down.  

Let the distance by which it fall in 1 s   be   d

d=0+  1/2 at  2 ′        

where   t  =1 s

d=  1/2×10×(1)  2

=5 m  

∴ Its height above the ground, h  

=45−5=40 m  

Hence after 4 s, the ball is at a height of 40 m above the ground.  

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