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Question

A balloon starts from rest is rising upwards with constant acceleration 15 m/s2 and after 10 s, a packet is dropped from it. The packet reaches the ground after t0 sec. Determine the value of t0 (in sec). Take g=10 m/s2 and 15=3.87.

A
21.4
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B
34.33
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C
25.5
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D
30.7
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Solution

The correct option is B 34.33
Considering vertically upward direction as +ve yaxis and motion to start at t=0

For balloon, ay=+15 m/s2
Displacement of balloon after time t=10 s is given as:
S=uyt+12ayt2
S=0+12×15×102=750 m
For balloon at t=10 s;
vy=uy+ayt=0+15×10=150 m/s

At t=10 s, packet's initial velocity will be equal to velocity of balloon at that instant.
After time t=t0 s, packet hits ground, so its displacement is:
Sy=750 m
Sy=uyt+12ayt2....(i)

t=t0 s, ay=g m/s2, uy=+150 m/s
Putting in Eq. (i), we get:
750=150t012×10×t20
t2030t0150=0......(ii)

From Eq.(ii):

t=30±15002
t=15+515=3.87(3.87+5)=34.33 s

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