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InterviewSolution
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A ball thrown up vertically returns to the thrower after 6s. (a) The velocity with which it was thrown up, The maximum height it reaches, and © Its position after 4s |
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Answer» Solution :Time ascent is equal to the time of descent. The ball TAKES a total of 6s for its upward and downward journey. Hence, it has TAKEN 3s to attain the maximum height. Final velocity of the ball at THA maximum height, v=o. Acceleration due to gravity, `g=-9.8ms^(-2)` Equation of motion, v=u+gt will give `o=u+(-9.8xx3)` `u=9.8xx3=29.4ms^(-1)` Hence, the ball was thrown upwards with a velocity of `29.4ms^(-1)` Let the maximum height attained by the ball be .H. Initial velocity during the upward journey `u=29.4ms^(-1)` Final velocity, v=o Acceleration due to gravity, `g=-9.8ms^(-2)` From the equation of motion, `s=ut+1//2at^(2)` `h=29.4xx3+1//2xx-9.8xx(3)^(2)=44.1m` Ball attains the maximum height after 3s. After attaining this height will start falling downwards. In this case, Initial velocity u=o Position of the ball after 4s of the throw is given by the distance travelled by it during its downward journey is `4s-3s=1s`. Equation of motion, `s-ut+1//2g""t^(2)` will give. `S=Oxt+1//2xx9.8xx12=4.9m` Total height =44.1m This means that the ball is 39.2m (44.1m -4.9m) above the ground after 4 seconds. |
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