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The Ideal Gas Law No gas perfectly obeys all of the gas laws under all conditions. Nevertheless, these assumptions work well for most gases and most conditions.

Jan 19, 2016

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Page 1: The Ideal Gas Law No gas perfectly obeys all of the gas laws under all conditions. Nevertheless, these assumptions work well for most gases and most conditions.
Page 2: The Ideal Gas Law No gas perfectly obeys all of the gas laws under all conditions. Nevertheless, these assumptions work well for most gases and most conditions.

The Ideal Gas LawNo gas perfectly obeys all of the gas laws under all conditions. Nevertheless, these assumptions work well for most gases and most conditions. As a result, one way to model a gas’s behavior is to assume that the gas is an ideal gas that perfectly follows these laws.

An ideal gas, unlike a real gas, does not condense to a liquid at low temperatures, does not have forces of attraction or repulsion between the particles, and is composed of particles that have no volume.

A real gas will behave like an ideal gas when the gas particle are far apart from each other. This condition is most likely to occur when the gas particlesare under low pressure and high temperature.

Chapter 12 Section 3 Molecular Composition of Gases

Page 3: The Ideal Gas Law No gas perfectly obeys all of the gas laws under all conditions. Nevertheless, these assumptions work well for most gases and most conditions.

Diffusion

Gaseous molecules, including molecules travel at high speeds in alldirections and mix quickly with molecules of gases in the air in a processcalled diffusion.

Page 4: The Ideal Gas Law No gas perfectly obeys all of the gas laws under all conditions. Nevertheless, these assumptions work well for most gases and most conditions.

Gas Reactions Allow Chemical Formulas to Be Deduced

In 1808, Joseph Gay-Lussac made an important discovery: if the pressureand temperature are kept constant, gases react in volume proportions thatare whole numbers. This is called Gay-Lussac’s Law of combined volumes.

Consider the formation of gaseous hydrogen chloride from the reaction ofhydrogen gas and chlorine gas.

H2(g) + Cl2(g) 2HCl(g)Gay-Lussac showed in an experiment that one volume of hydrogen gas reacts with one volume of chlorine gas to form two volumes of hydrogen chloride gas.

Therefore the ratio of a balance equation of gases at constant pressure andTemperature will give you mole to mole ratios but also volume to volume ratios.

Page 5: The Ideal Gas Law No gas perfectly obeys all of the gas laws under all conditions. Nevertheless, these assumptions work well for most gases and most conditions.

Dalton’s Law of Partial Pressure

In 1805, John Dalton showed that in a mixture of gases, each gas exerts acertain pressure as if it were alone with no other gases mixed with it. Thepressure of each gas in a mixture is called the partial pressure. The totalpressure of a mixture of gases is the sum of the partial pressures of thegases. This principle is known as Dalton’s law of partial pressure.

Ptotal = PA + PB + PC

Ptotal is the total pressure, and PA, PB, and PC are the partial pressures ofeach gas.

Page 6: The Ideal Gas Law No gas perfectly obeys all of the gas laws under all conditions. Nevertheless, these assumptions work well for most gases and most conditions.

Gas Stoichiometry

1 mole of gases at STP will occupy 22.4 Liters of volume.

Ratios of gas volumes will be the same as mole ratios of gases in balancedequations. Avogadro’s law shows that the mole ratio of two gases at thesame temperature and pressure is the same as the volume ratio of the twogases. This greatly simplifies the calculation of the volume of products orreactants in a chemical reaction involving gases.

Page 7: The Ideal Gas Law No gas perfectly obeys all of the gas laws under all conditions. Nevertheless, these assumptions work well for most gases and most conditions.
Page 8: The Ideal Gas Law No gas perfectly obeys all of the gas laws under all conditions. Nevertheless, these assumptions work well for most gases and most conditions.
Page 9: The Ideal Gas Law No gas perfectly obeys all of the gas laws under all conditions. Nevertheless, these assumptions work well for most gases and most conditions.
Page 10: The Ideal Gas Law No gas perfectly obeys all of the gas laws under all conditions. Nevertheless, these assumptions work well for most gases and most conditions.
Page 11: The Ideal Gas Law No gas perfectly obeys all of the gas laws under all conditions. Nevertheless, these assumptions work well for most gases and most conditions.
Page 12: The Ideal Gas Law No gas perfectly obeys all of the gas laws under all conditions. Nevertheless, these assumptions work well for most gases and most conditions.
Page 13: The Ideal Gas Law No gas perfectly obeys all of the gas laws under all conditions. Nevertheless, these assumptions work well for most gases and most conditions.
Page 14: The Ideal Gas Law No gas perfectly obeys all of the gas laws under all conditions. Nevertheless, these assumptions work well for most gases and most conditions.
Page 15: The Ideal Gas Law No gas perfectly obeys all of the gas laws under all conditions. Nevertheless, these assumptions work well for most gases and most conditions.
Page 16: The Ideal Gas Law No gas perfectly obeys all of the gas laws under all conditions. Nevertheless, these assumptions work well for most gases and most conditions.
Page 17: The Ideal Gas Law No gas perfectly obeys all of the gas laws under all conditions. Nevertheless, these assumptions work well for most gases and most conditions.
Page 18: The Ideal Gas Law No gas perfectly obeys all of the gas laws under all conditions. Nevertheless, these assumptions work well for most gases and most conditions.
Page 19: The Ideal Gas Law No gas perfectly obeys all of the gas laws under all conditions. Nevertheless, these assumptions work well for most gases and most conditions.
Page 20: The Ideal Gas Law No gas perfectly obeys all of the gas laws under all conditions. Nevertheless, these assumptions work well for most gases and most conditions.
Page 21: The Ideal Gas Law No gas perfectly obeys all of the gas laws under all conditions. Nevertheless, these assumptions work well for most gases and most conditions.