Two particles A and B projected in the air. A is thrown with a speed of 30m/sec and B with a speed of 40m/sec as shown in the figure. What is the separation between them after 3 sec?
A
130m
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B
140m
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C
150m
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D
160m
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Solution
The correct option is C150m Using the concept of relative motion
Using, SAB=uABt+12aABt2 →aAB=→aA−→aB=→g−→g=0 ∴→vAB=√302+402=50 ∴sAB=vABt=50t=150m