Question

1.Effusion is a process in which a gas escapes from a container through a small opening...

1.Effusion is a process in which a gas escapes from a container through a small opening into a vacuum. In a pair of experiments, a sample of tetrafluoroethylene, C2F4, effuses at a rate of 4.6 × 10-6 mol/h and an unknown gas effuses at a rate of 4.0×10-6 mol/h. Identify the unknown gas. 2.Molecules in a sample of a gas move at a variety of speeds. Molecular speed can be described by the root-mean-square speed of the gas, which is the square root of the average of the squares of the speeds of all the gas molecules. What is the rms speed of a sample of CO2 at 69.99 °C, in m/s? 3.Nitrogen monoxide is a pollutant commonly found in smokestack emissions. One way to remove it is to react it with ammonia. 4NH3(g) + 6NO(g) → 5N2(g) + 6H2O(ℓ) How many liters of ammonia are required to change 41.3 L of nitrogen monoxide to nitrogen gas? Assume 100% yield and that all gases are measured at the same temperature and pressure. 4.A 1.78-g sample of an unknown gas has a volume of 884 mL and a pressure of 968 mmHg at 57.1 °C. Calculate the molar mass of this compound.

0 0
Add a comment Improve this question Transcribed image text
Answer #1

un Knoum y, 2 ·6x10 ご

Add a comment
Know the answer?
Add Answer to:
1.Effusion is a process in which a gas escapes from a container through a small opening...
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
  • Which of the following is true about a 0.200 mol sample of nitrogen gas and a...

    Which of the following is true about a 0.200 mol sample of nitrogen gas and a 0.200 mol sample of argon gas that are at 1.20 atm and an initial temperature 55.0°C when the temperature changes to 400 K? Assume constant volume for the container under both of these temperature conditions. The density of both gases will increase. There will be more collisions between the gas molecules and the pressure in the container will decrease. None of these choices is...

  • CH131 Summer Session 1, 2019 5. (gas mixtures) Sulfur dicxide reacts with oxygen gas to form sulfur trioxide via 2...

    CH131 Summer Session 1, 2019 5. (gas mixtures) Sulfur dicxide reacts with oxygen gas to form sulfur trioxide via 2 SO(R)+ O(g)-2 SO,lg) A researcher studying the process introduces 725.0 Pa of SO, into a rigid reaction chamber at. constant temperature. She then introduces 500.0 Pa of oxygen. Assuming a complete reaction, calculate the final total pressure of the container. 6. (kinetic theory) Calculate the root-mean-square speed, v for N0p t20°C and 200 °c. 7. (kinetic theory) Calculate the temperature...

  • Problems 1. According to the Ideal Gas Law, which of the following is/are correct for a...

    Problems 1. According to the Ideal Gas Law, which of the following is/are correct for a gas cylinder of fixed volume filled with one mole of oxygen gas? Please explain each one. a. When the temperature of the cylinder changes from 15 °C to 30 °C, the pressure inside the cylinder doubles. b. When a second mole of oxygen is added to the cylinder, the ratio T/P remains constant. C. An identical cylinder filled with the same pressure of hydrogen...

  • Chame nsead tu age 06-17 Experiment 8: Molar Mass of a Volatile Liquid Purpose To determine...

    Chame nsead tu age 06-17 Experiment 8: Molar Mass of a Volatile Liquid Purpose To determine the molar mass of a pure substance we need to find out (a) the number of moles in a given sample, and (b) the mass of the same sample. Molar mass is then: mass divided by moles Introduction Using the ideal gas equation, PV= nRT, we can determine the number of moles (n) of gas or vapor under measured conditions of pressure (P), volume...

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