A particle is performing simple harmonic motion along x− axis with amplitude 4 cm and time period 1.2 sec. The minimum time taken by the particle to move from x=+2 cm to x=+4 cm and back again is given by
A
0.6 sec
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B
0.4 sec
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C
0.3 sec
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D
0.2 sec
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Solution
The correct option is B0.4 sec Time taken by particle to move from x=0 (mean position) to x=4 (exterme position) =T4=1.24=0.3 s Let t be the time taken by the particle to move from x=0 to x=2 cm x=A sin ωt⇒2=4 sin2πTt⇒12=sin2π1.2t ⇒π6=2π1.2t⇒t=0.1 s Hence time to move from x=2 to x=4 will be equal to 0.3−0.1=0.2 s Hence total time to move from x=2 to x=4 and back again =2×0.2=0.4 sec