Question 4What temperature would be necessary to double the volume of a gas initially at s.t.p. if the pressure is decreased by 50% ?

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Accepted Answer

Initial conditions [S.t.p.]Final conditionsP1 = Initial pressure of the gas = 1 atmP2 = Final pressure of the gas = 0.5 atmV1 = Initial volume of the gas = VV2 = Final volume of the gas = 2VT1 = Initial temperature of the gas = 273 KT2 = Final temperature of the gas = ?By Gas Law:P1×V1T1=P2×V2T2\dfrac{\text{P}_1\times\text{V}_1}{\text{T}_1} = \dfrac{\text{P}_2\times\text{V}_2}{\text{T}_2}T1​P1​×V1​​=T2​P2​×V2​​Substituting the values :1×V273=0.5×2VT2T2=0.5×2×273T2=273K\dfrac{1\times \text{V}}{273} = \dfrac{0.5\times\text{2\text{V}}}{\text{T}_2} \[0.5em] \text{T}_2 = 0.5\times 2 \times 273\[0.5em] \text{T}_2 = 273\text{K}2731×V​=T2​0.5×2V​T2​=0.5×2×273T2​=273KTherefore, final temperature of the gas = 273 K = 0 °C

Initial conditions [S.t.p.]	Final conditions
P₁ = Initial pressure of the gas = 1 atm	P₂ = Final pressure of the gas = 0.5 atm
V₁ = Initial volume of the gas = V	V₂ = Final volume of the gas = 2V
T₁ = Initial temperature of the gas = 273 K	T₂ = Final temperature of the gas = ?

Study of Gas Laws — Question 4

Question 4