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Exercises · 5.8

Q.What will be the pressure of the gaseous mixture when 0.5 L of H2 at 0.8 bar and 2.0 L of dioxygen at 0.7 bar are introduced in a 1L vessel at 27°C?

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Step 1 – Find each gas's NEW partial pressure after moving into the 1 L vessel

Since temperature is unchanged, apply Boyle's law (p1V1=p2V2p_1V_1=p_2V_2) separately to each gas as it expands/compresses into the shared 1 L vessel:

For H2_2:

pH2new=p1V1V2=(0.8 bar)(0.5 L)1 L=0.4 barp_{\text{H}_2}^{\text{new}} = \frac{p_1V_1}{V_2} = \frac{(0.8\ \text{bar})(0.5\ \text{L})}{1\ \text{L}} = 0.4\ \text{bar}

For O2_2:

pO2new=p1V1V2=(0.7 bar)(2.0 L)1 L=1.4 barp_{\text{O}_2}^{\text{new}} = \frac{p_1V_1}{V_2} = \frac{(0.7\ \text{bar})(2.0\ \text{L})}{1\ \text{L}} = 1.4\ \text{bar} …

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