Solve: What will be the final volume of a 5.00 L He gas which contains 0.965 mole at 30°C and 1.00 atmosphere, if the amount of this gas is increased to 1.80 moles provided that the temperature and pressure remains unchanged?
Given: V1 = 5.00L V2 = ?
T𝟏 = 0.965 mole T𝟐 = 1.80 moles
Given:
P1 = P2 = 1.00 atm = constant
T1 = T2 = 30°C = constant
n1 = 0.965 mol
V1 = 5.00 L
n2 = 1.80 mol
V2 = unknown
Formula: V1 / n1 = V2 / n2
Solution:
Since the temperature and pressure remain unchanged, Avogadro's law can be used.
Avogadro's law can be expressed as: V1 / n1 = V2 / n2
V1n2 = V2n1
To find the final volume, solve the equation for V2:
V2 = V1n2 / n1
V2 = (5.00 L × 1.80 mol) / (0.965 mol) = 9.3264 atm = 9.33 atm
V2 = 9.33 atm
Answer: The final volume of He gas will be 9.33 atm
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