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13 August, 22:50

The volume of air in a diving bell changes as it descends into deep water. If the air in a diving bell occupies 9.50 L at 1.02 atm and 20.1°C, what will be the volume of the air at 1.55 atm and 15.0°C?

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  1. 14 August, 01:13
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    V₂ = 6.14 L

    Explanation:

    Initial volume = 9.50 L

    Initial temperature = 20.1°C (20.1 + 273 = 293.1 K)

    Initial pressure = 1.02 atm

    Final temperature = 15°C (15+273 = 288 K)

    Final volume = ?

    Final pressure = 1.55 atm

    Formula:

    P₁V₁/T₁ = P₂V₂/T₂

    P₁ = Initial pressure

    V₁ = Initial volume

    T₁ = Initial temperature

    P₂ = Final pressure

    V₂ = Final volume

    T₂ = Final temperature

    Solution:

    V₂ = P₁V₁ T₂ / T₁ P₂

    V₂ = 1.02 atm. 9.50 L. 288 K / 293.1 K. 1.55 atm

    V₂ = 2790.72 L / 454.305

    V₂ = 6.14 L
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