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Zorluk: KolayDalton's Law of Partial Pressures and Collection of Gas over Water

A sample of oxygen gas is collected over water at 27C27^\circ\text{C} and a total pressure of 755 mmHg755\text{ mmHg}. If the saturated vapor pressure of water at 27C27^\circ\text{C} is 25 mmHg25\text{ mmHg}, what is the partial pressure of the dry oxygen gas in mmHg\text{mmHg}?

Cevap: 730 mmHg

Cevap

The partial pressure of the dry oxygen gas is 730 mmHg730\text{ mmHg}.
According to Dalton's Law of Partial Pressures, the total pressure exerted by a mixture of gases is equal to the sum of the partial pressures of the component gases. When a gas is collected over water, the gas absorbs water vapor, so Ptotal=Pdry gas+Pwater vaporP_{\text{total}} = P_{\text{dry gas}} + P_{\text{water vapor}}. To find the pressure of the dry oxygen, the water vapor pressure (25 mmHg25\text{ mmHg}) must be subtracted from the total barometric pressure (755 mmHg755\text{ mmHg}), giving 730 mmHg730\text{ mmHg}.

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1
Identify Dalton's Law equation for a gas collected over water
Ptotal=Pdry gas+PwaterP_{\text{total}} = P_{\text{dry gas}} + P_{\text{water}}
When a gas is collected over water, it becomes saturated with water vapor. The total observed pressure is the sum of the partial pressure of the dry gas and the vapor pressure of water (aqueous tension).
2
Subtract the aqueous tension from the total pressure
Pdry gas=755 mmHg25 mmHg=730 mmHgP_{\text{dry gas}} = 755\text{ mmHg} - 25\text{ mmHg} = 730\text{ mmHg}
Isolating Pdry gasP_{\text{dry gas}} gives the pressure exerted purely by the collected oxygen gas.

Anahtar Kavram

Dalton's Law of Partial Pressures and Collection of Gas over Water
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