Question
A scuba diver creates a spherical bubble with a radius of $2.5 \mathrm{~cm}$ at a depth of $30.0 \mathrm{~m}$ where the total pressure (including atmospheric pressure) is $4.00 \mathrm{~atm} .$ What is the radius of the bubble when it reaches the surface of the water? (Assume atmospheric pressure to be $1.00$ atm and the temperature to be $298 \mathrm{~K}$.)
Step 1
- Initial radius of the bubble, \( r_1 = 2.5 \, \text{cm} \). - Initial pressure at depth, \( P_1 = 4.00 \, \text{atm} \). - Initial temperature, \( T_1 = 298 \, \text{K} \). Show more…
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A scuba diver creates a spherical bubble with a radius of 2.5 cm at a depth of 30.0 m where the total pressure (including atmospheric pressure) is 4.00 atm. What is the radius of the bubble when it reaches the surface of the water? (Assume that the atmospheric pressure is 1.00 atm and the temperature is 298 K.)
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