Question

a mixture of 8.6 g CH4 and 8.6 g Xe is placed in a container and...

a mixture of 8.6 g CH4 and 8.6 g Xe is placed in a container and the total pressure is found to be 0.42 atm
Find the partial pressure of CH4
0 0
Add a comment Improve this question Transcribed image text
Answer #1

moles of CH4 = 8.68 16 g/mol - 0.5375 mole moles of Xe = 8.69 -0.0655 mole 131.3 g/mol mole fraction of CH4 (X CHA) = 0.5375

Add a comment
Know the answer?
Add Answer to:
a mixture of 8.6 g CH4 and 8.6 g Xe is placed in a container and...
Your Answer:

Post as a guest

Your Name:

What's your source?

Earn Coins

Coins can be redeemed for fabulous gifts.

Not the answer you're looking for? Ask your own homework help question. Our experts will answer your question WITHIN MINUTES for Free.
Similar Homework Help Questions
  • A mixture of methane gas, CH4(g), and pentane gas, C5H12(g), has a pressure of 0.5427 atm...

    A mixture of methane gas, CH4(g), and pentane gas, C5H12(g), has a pressure of 0.5427 atm when placed in a sealed container. The complete combustion of the mixture to carbon dioxide gas, CO2(g), and water vapor, H2O(g), was achieved by adding exactly enough oxygen gas, O2(g), to the container. The pressure of the product mixture in the sealed container is 2.417 atm. Calculate the mole fraction of methane in the initial mixture assuming the temperature and volume remain constant.

  • A mixture containing 2.17 g each of CH4(g), C2H4(g) and C4H10(g) is contained in a 1.50...

    A mixture containing 2.17 g each of CH4(g), C2H4(g) and C4H10(g) is contained in a 1.50 L flask at a temperature of 35°C. (a) Calculate the partial pressure of each of the gases in the mixture. PCH4 = ? atm PC2H4 = ? atm PC4H10 = ? atm (b) Calculate the total pressure of the mixture. ? atm

  • You have a container with a mixture of CO2, Ar, and CH4 gases. If the pressure...

    You have a container with a mixture of CO2, Ar, and CH4 gases. If the pressure of CO2 and Ar are the same, and the pressure of CH4 is 994 mm Hg, what is the pressure of CO2 if the total pressure is 2.88 atm?

  • A) Three gases (8.00 g of methane, CH4, 18.0 g of ethane, C2H6, and an unknown...

    A) Three gases (8.00 g of methane, CH4, 18.0 g of ethane, C2H6, and an unknown amount of propane, C3H8) were added to the same 10.0-L container. At 23.0 ∘C, the total pressure in the container is 3.90 atm . Calculate the partial pressure of each gas in the container. Express the pressure values numerically in atmospheres, separated by commas. Enter the partial pressure of methane first, then ethane, then propane. B) A gaseous mixture of O2O2 and N2N2 contains...

  • We have a container enclosing a mixture of N2(g) and O2(g). The total pressure is 3.97...

    We have a container enclosing a mixture of N2(g) and O2(g). The total pressure is 3.97 atm. The temperature is 25.00 oC and the volume of the container is 17.8 L. If the mass of N2 in the container is 33.4 g, what is the partial pressure of O2 (in atm) within the container?

  • Part A Three gases (8.00 g of methane, CH4, 18.0 g of ethane, C2H, and an...

    Part A Three gases (8.00 g of methane, CH4, 18.0 g of ethane, C2H, and an unknown amount of propane, C3Hs) were added the same 10.0-L container. At 23.0c C, the total the container is 3.50 atm . Calculate the partial pressure each gas in the container. pressure Express the pressure values numerically in atmospheres, separated by commas. Enter the partial pressure of methane first, then ethane, then propane. View Available Hint(s) ΠνΠ ΑΣ Φ atm Previous Answers Submit X...

  • Calculate pressure using Dalton's law of partial pressures. A gas mixture is made up of Xe...

    Calculate pressure using Dalton's law of partial pressures. A gas mixture is made up of Xe (40.1 g), He (1.29 g), and Kr (26.9 g). The mixture has a volume of 26.4 L at 32 °C. Calculate the partial pressure of each gas in the mixture and the total pressure of the gas mixture. Pxe = PHe = Pkr = Ptotal = atm atm atm atm

  • 12. What is the pressure in a 1.00 liter container of methane, CH4,(Molar mass= 16 g/mol)...

    12. What is the pressure in a 1.00 liter container of methane, CH4,(Molar mass= 16 g/mol) that contains 40.0 g of the gas at 25.0°C? A) 5.13 atm B) 61.0 atm C) 82.1 atm D) 979 atm E) 3,920 atm 13. What is the total pressure of a mixture of He and H2 if the partial pressures are 320 mm Hg and 800 mm Hg respectively? A) 40 mm Hg B) 60 mm Hg C) 320 mm Hg D) 480...

  • 12. What is the pressure in a 1.00 liter container of methane, CH4,(Molar mass= 16 g/mol)...

    12. What is the pressure in a 1.00 liter container of methane, CH4,(Molar mass= 16 g/mol) that contains 40.0 g of the gas at 25.0°C? A) 5.13 atm B) 61.0 atm C) 82.1 atm D) 979 atm E) 3,920 atm 13. What is the total pressure of a mixture of He and H2 if the partial pressures are 320 mm Hg and 800 mm Hg respectively? A) 40 mm Hg B) 60 mm Hg C) 320 mm Hg D) 480...

  • A mixture of He, Ar, and Xe has a total pressure of 2.80 atm . The partial pressure of He is 0.300 atm , and the partial...

    A mixture of He, Ar, and Xe has a total pressure of 2.80 atm . The partial pressure of He is 0.300 atm , and the partial pressure of Ar is 0.300 atm . What is the partial pressure of Xe? A volume of 18.0 L contains a mixture of 0.250 mole N2 , 0.250 mole O2 , and an unknown quantity of He. The temperature of the mixture is 0 ∘C , and the total pressure is 1.00 atm...

ADVERTISEMENT
Free Homework Help App
Download From Google Play
Scan Your Homework
to Get Instant Free Answers
Need Online Homework Help?
Ask a Question
Get Answers For Free
Most questions answered within 3 hours.
ADVERTISEMENT
ADVERTISEMENT
ADVERTISEMENT