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Question
what pressure (in atm) does 3.54 moles of chlorine gas at 376 k exert on the walls of its 51.2 l container? ? atm
Step1: Recall ideal gas law
$PV = nRT$ where $R = 0.0821 \frac{\text{L·atm}}{\text{mol·K}}$
Step2: Rearrange for pressure
$P = \frac{nRT}{V}$
Step3: Substitute values
$P = \frac{3.54 \times 0.0821 \times 376}{51.2}$
Step4: Calculate result
$P \approx \frac{3.54 \times 0.0821 \times 376}{51.2} \approx 2.17$
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2.17