A sea diver at depth of 45 m exhales a bubble of air that is 1.0 cm in radius. Assuming the ideal behaviour, find out radius of this bubble as it breaks at the surface of water?

1.75 cm

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1.50 cm

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1.25 cm

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0.75 cm

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Solution

The correct option is A
1.75 cm

$P_{1} V_{1} = P_{2} V_{2}$ $(p = h d g)$

$(P_{a i r} + P_{H_{2} O}) V_{1} = P_{a i r} V_{2}$

$(76 \times 13.6 \times g + 4500 \times 1 \times g) \frac{4}{3} π (1^{3})$

$= 76 \times 13.6 \times g \times \frac{4}{3} π r^{3}$

$\Rightarrow r^{3} = 5.35 \Rightarrow r = 1.75 c m$

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A sea diver at depth of 45 m exhales a bubble of air that is 1.0 cm in radius. Assuming the ideal behaviour, find out radius of this bubble as it breaks at the surface of water?

The correct option is A 1.75 cm P1V1=P2V2 (p=hdg) (Pair+PH2O)V1=PairV2 (76×13.6×g+4500×1×g)43π(13) =76×13.6×g×43πr3 ⇒r3=5.35⇒r=1.75 cm