Boyle's Law
Charles Law
Dalton's Law
Concepts
Ideal Gas law
Avogadro's Law
100

If 22.5 L of nitrogen at 748 mm Hg are compressed to 725 mm Hg at a constant temperature. What is the new volume?

23.2 L

100

Calculate the decrease in temperature when 6.00 L at 293.15 K is compressed to 4.00 L.

200 K

100

If you have a 10 liter sample of a gas in a balloon and you apply pressure to squeeze the gas down to a volume of 5 liters, at constant temperature, what will happen to the number of collisions between the gas molecules and the walls of the balloons?

The number of collisions will increase.

100

Which statement is one of the assumptions of the Kinetic Molecular Theory of Gases?

a. collisions between gas particles and container walls are inelastic

b. the temperature of a gas depends on the average potential energy of the gas particles

c. gas particles are much larger than the distance between them

d. the volume of a gas is mostly empty space

d. the volume of a gas is mostly empty space

100

If I have 4 moles of a gas at a pressure of 5.6 atm and a volume of 12 liters, what is the temperature?

203.6 K

100

Why do your lungs expand, or get bigger, when you breath in? Discuss using Avogadro's Law.

Moles and Volume have a direct relationship therefore, increase volume you're also increasing moles. More air is going inside the lungs.

200

A gas with a volume of 4.0L at a pressure of 205kPa is allowed to expand to a volume of 12.0L. What is the pressure in the container if the temperature remains constant?

68.3 kPa

200

A container containing 5.00 L of a gas is collected at 100 K and then allowed to expand to 20.0 L. What must the new temperature be in order to maintain the same pressure?

400 K

200

A canister contains 4.19 atm of carbon dioxide, 7.40 atm of nitrogen, and 5.18 atm of oxygen. What is the total pressure of the container?

16.77 atm

200

Describe what happens when two gas atoms collide together. (must discuss elastic collisions and total kinetic energy)

The two atoms collide and keep their own kinetic energy. This elastic collisions between the two atoms does not change the total kinetic energy.

200

If I have an unknown quantity of gas at a pressure of 1.2 atm, a volume of 31 liters, and a temperature of 87 K, how many moles of gas do I have?

52.1 mol

200

A 25.5 liter balloon holding 3.5 moles of carbon dioxide leaks. If we are able to determine that 1.9 moles of carbon dioxide escaped before the container could be sealed, what is the new volume of the container?

13.8 L

300

What pressure is required to compress 196.0 liters of air at 1.00 atmosphere into a cylinder whose volume is 26.0 liters?

7.54 atm

300

A gas occupies 900.0 mL at a temperature of 27.0 °C (300.15 K). What is the volume at 132.0 °C (405.15 K)?

1211.4 mL

300

Container A contains 4 different noble gases. The helium gas has a pressure of 1.44 atm. The neon gas has a pressure of 3.16 atm, while argon has a pressure of 2.52 atm. If the total pressure of these gases is 11.5 atm, what is the pressure of the krypton gas?

4.38 atm

300

A sample of oxygen gas is in a closed container. The gas and the container are at room temperature. According to the kinetic molecular theory of gases, what happens when a molecule of the gas collides with the container wall?

No energy is transferred between the molecule and the container.

300

If I have 7.7 moles of gas at a pressure of 0.09 atm and at a temperature of 56 degrees Celsius (329.15 K), what is the volume of the container that the gas is in?

2312 L

300
If sample #1 contains 2.98 moles of hydrogen in a 32.8 L container. How many moles of hydrogen are in a 45.3 liter container under the same conditions?

4.12 mol

400

An expandable container holds 15 liters of a gas at a pressure of 2.5 atm and a temperature of 320 K. The volume of the container is then increased to a new volume of 25 liters while the temperature is held container at 320 K. What is the new pressure in the container?

1.5 atm

400

Ten liters of an unknown gas are at an initial temperature, Ti = 293 K. With no change in pressure, the gas is heated to a final temperature, Tf = 352K. What is the final volume of the gas in liters?

12.0 L

400

The total pressure of a mixture of three gases (helium, aregon, and neon) inside a container is 810 mmHg. The partial pressure of the helium is 486 mmHg, and the partial preassure of the argon is 120 mmHG. What is the partial pressure of the neon in mmHg?

204 mmHg

400

Gases are far more easily compressed than liquids and solids. Which statement of the kinetic molecular theory explains this characteristic of gases?

a. the volume of a gas is mostly empty space

b. gas particles have inelastic collisions

c. the energy of a gas particle depends on the average potential energy of the gas

d. there are strong attractive forces between has particles

a. the volume of a gas is mostly empty space
400

Oxygen gas in a 15.0 L container exerts a pressure of 0.48 atm at 21 (294.15 K) degrees Celsius. How many moles of oxygen are in this container?

0.3 mol

400

At STP, 6.5 moles of nitrogen gas, N2, occupy a volume of 145 liters. How many moles of nitrogen gas, N2, occupy a volume of 179 liters at STP?

8.0 mol

500

A balloon filled with carbon dioxide gas at room temperature is placed in a freezer at 5 degrees Celsius. Explain what is happening to the kinetic energy of the gas particles inside the balloon? 

there is a decrease in the kinetic energy of the gas particles.

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