The partial pressures of each gas in the given sample containing mixture of 50 % helium and 50 % xenon by mass are needed to be determined, it the total pressure of sample is given as 600 torr . Concept introduction: Partial pressure of a gas in a mixture of gases is the pressure of that gas when it alone. Partial pressure of a gas in terms of its mole fraction and total pressure is, ` P A = χ A × P TOTAL Mole fraction of a molecule in a mixture is the ratio of number of moles of particular molecule to the sum of number of moles of all molecules in the mixture. Equation for mole fraction of a molecule in a mixture of two molecules (A and B) is, molecule fraction of A, ( χ A ) = numbers of moles of A (n A ) numbers of moles of A (n A ) + numbers of moles of B (n B ) Number of moles of a substance from its given mass is, Number of moles = Given mass Molecular mass Total pressure of a mixture of gases is the sum of individual partial pressures of constituted gases. To determine: the partial pressure of each gas in the given mixture of 50 % helium and 50 % xenon by mass.
The partial pressures of each gas in the given sample containing mixture of 50 % helium and 50 % xenon by mass are needed to be determined, it the total pressure of sample is given as 600 torr . Concept introduction: Partial pressure of a gas in a mixture of gases is the pressure of that gas when it alone. Partial pressure of a gas in terms of its mole fraction and total pressure is, ` P A = χ A × P TOTAL Mole fraction of a molecule in a mixture is the ratio of number of moles of particular molecule to the sum of number of moles of all molecules in the mixture. Equation for mole fraction of a molecule in a mixture of two molecules (A and B) is, molecule fraction of A, ( χ A ) = numbers of moles of A (n A ) numbers of moles of A (n A ) + numbers of moles of B (n B ) Number of moles of a substance from its given mass is, Number of moles = Given mass Molecular mass Total pressure of a mixture of gases is the sum of individual partial pressures of constituted gases. To determine: the partial pressure of each gas in the given mixture of 50 % helium and 50 % xenon by mass.
Solution Summary: The author explains the partial pressures of each gas in a given sample containing mixture of helium and xenon by mass are needed to be determined, and the total pressure of sample is given as
Interpretation: The partial pressures of each gas in the given sample containing mixture of
50% helium and
50% xenon by mass are needed to be determined, it the total pressure of sample is given as
600torr.
Concept introduction:
Partial pressure of a gas in a mixture of gases is the pressure of that gas when it alone.
Partial pressure of a gas in terms of its mole fraction and total pressure is,
`
PA=χA×PTOTAL
Mole fraction of a molecule in a mixture is the ratio of number of moles of particular molecule to the sum of number of moles of all molecules in the mixture.
Equation for mole fraction of a molecule in a mixture of two molecules (A and B) is,
An expression for the root mean square velocity, vrms, of a gas was derived. Using Maxwell’s velocity distribution, one can also calculate the mean velocity and the most probable velocity (mp) of a collection of molecules. The equations used for these two quantities are vmean=(8RT/πM)1/2 and vmp=(2RT/M)1/2 These values have a fixed relationship to each other.(a) Arrange these three quantities in order of increasing magnitude.(b) Show that the relative magnitudes are independent of the molar mass of the gas.(c) Use the smallest velocity as a reference for establishing the order of magnitude and determine the relationship between the larger and smaller values.
The reaction of solid dimethylhydrazine, (CH3)2N2H2, and liquefied dinitrogen tetroxide, N2O4, has been investigated for use as rocket fuel. The reaction produces the gases carbon dioxide (CO2), nitrogen (N2), and water vapor (H2O), which are ejected in the exhaust gases. In a controlled experiment, solid dimethylhydrazine was reacted with excess dinitrogen tetroxide, and the gases were collected in a closed balloon until a pressure of 2.50 atm and a temperature of 400.0 K were reached.(a) What are the partial pressures of CO2, N2, and H2O?(b) When the CO2 is removed by chemical reaction, what are the partial pressures of the remaining gases?
Chapter 8 Solutions
Bundle: Chemistry: An Atoms First Approach, 2nd, Loose-Leaf + OWLv2, 4 terms (24 months) Printed Access Card
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