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Chapter 7 Gases

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Chapter 7 Gases The Combined Gas Law Volume and Moles (Avogadro s Law) Partial Pressures Combined Gas Law P1V1 = P2V2 T1 T2 Rearrange the ... – PowerPoint PPT presentation

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Title: Chapter 7 Gases


1
Chapter 7Gases
  • The Combined Gas Law
  • Volume and Moles
  • (Avogadros Law)
  • Partial Pressures

2
Combined Gas Law
  • P1V1 P2V2
  • T1 T2
  • Rearrange the combined gas law to solve for V2
  • P1V1T2 P2V2T1
  • V2 P1V1T2
  • P2T1

3
Combined Gas Law
  • P1V1 P2V2
  • T1 T2
  • Isolate V2
  • P1V1T2 P2V2T1
  • V2 P1V1T2
  • P2T1

4
Learning Check C1
  • Solve the combined gas laws for T2.

5
Solution C1
  • Solve the combined gas law for T2.
  • (Hint cross-multiply first.)
  • P1V1 P2V2
  • T1 T2
  • P1V1T2 P2V2T1
  • T2 P2V2T1
  • P1V1

6
Combined Gas Law Problem
  • A sample of helium gas has a volume of 0.180 L,
    a pressure of 0.800 atm and a temperature of
    29C. What is the new temperature(C) of the
    gas at a volume of 90.0 mL and a pressure of 3.20
    atm?

7
Data Table
  • Set up Data Table
  • P1 0.800 atm V1 0.180 L T1
    302 K
  • P2 3.20 atm V2 90.0 mL T2
    ??

??
8
Solution
  • Solve for T2
  • Enter data
  • T2 302 K x atm x mL
    K
  • atm mL
  • T2 K - 273 C

9
Calculation
  • Solve for T2
  • T2 302 K x 3.20 atm x 90.0 mL 604 K
  • 0.800 atm 180.0 mL
  • T2 604 K - 273 331 C

10
Learning Check C2
  • A gas has a volume of 675 mL at 35C and 0.850
    atm pressure. What is the temperature in C when
    the gas has a volume of 0.315 L and a pressure of
    802 mm Hg?

11
Solution G9
  • T1 308 K T2 ?
  • V1 675 mL V2 0.315 L 315 mL
  • P1 0.850 atm P2 802 mm Hg
  • 646 mm Hg
  • T2 308 K x 802 mm Hg x 315 mL
  • 646 mm Hg
    675 mL
  • P inc, T inc V dec,
    T dec
  • 178 K - 273 - 95C

12
Volume and Moles
  • How does adding more molecules of a gas change
    the volume of the air in a tire?
  • If a tire has a leak, how does the loss of air
    (gas) molecules change the volume?

13
Learning Check C3
  • True (1) or False(2)
  • 1.___The P exerted by a gas at constant V is not
    affected by the T of the gas.
  • 2.___ At constant P, the V of a gas is directly
    proportional to the absolute T
  • 3.___ At constant T, doubling the P will cause
    the V of the gas sample to decrease to one-half
    its original V.

14
Solution C3
  • True (1) or False(2)
  • 1. (2)The P exerted by a gas at constant V is not
    affected by the T of the gas.
  • 2. (1) At constant P, the V of a gas is directly
    proportional to the absolute T
  • 3. (1) At constant T, doubling the P will cause
    the V of the gas sample to decrease to one-half
    its original V.

15
Avogadros Law
  • When a gas is at constant T and P, the V is
    directly proportional to the number of moles (n)
    of gas
  • V1 V2
  • n1 n2
  • initial final

16
STP
  • The volumes of gases can be compared when they
    have the same temperature and pressure (STP).
  • Standard temperature 0C or 273 K
  • Standard pressure 1 atm (760 mm Hg)

17
Learning Check C4
  • A sample of neon gas used in a neon sign has a
    volume of 15 L at STP. What is the volume (L) of
    the neon gas at 2.0 atm and 25C?
  • P1 V1 T1 K
  • P2 V2 ?? T2 K
  • V2 15 L x atm x K
    6.8 L
  • atm K

18
Solution C4
  • P1 1.0 atm V1 15 L T1 273 K
  • P2 2.0 atm V2 ?? T2 248 K
  • V2 15 L x 1.0 atm x 248 K
    6.8 L
  • 2.0 atm 273 K

19
Molar Volume
  • At STP
  • 4.0 g He 16.0 g CH4 44.0 g CO2
  • 1 mole 1 mole 1mole
  • (STP) (STP) (STP)
  • V 22.4 L V 22.4 L V
    22.4 L

20
Molar Volume Factor
  • 1 mole of a gas at STP 22.4 L
  • 22.4 L and 1 mole
  • 1 mole 22.4 L

21
Learning Check C5
  • A.What is the volume at STP of 4.00 g of CH4?
  • 1) 5.60 L 2) 11.2 L 3) 44.8 L
  • B. How many grams of He are present in 8.0 L of
    gas at STP?
  • 1) 25.6 g 2) 0.357 g 3) 1.43 g

22
Solution C5
  • A.What is the volume at STP of 4.00 g of CH4?
  • 4.00 g CH4 x 1 mole CH4 x 22.4 L (STP) 5.60 L
  • 16.0 g CH4 1 mole
    CH4
  • B. How many grams of He are present in 8.0 L of
    gas at STP?
  • 8.00 L x 1 mole He x 4.00 g He 1.43
    g He
  • 22.4 He 1 mole
    He

23
Daltons Law of Partial Pressures
  • Partial Pressure
  • Pressure each gas in a mixture would exert if it
    were the only gas in the container
  • Dalton's Law of Partial Pressures
  • The total pressure exerted by a gas mixture is
    the sum of the partial pressures of the gases in
    that mixture.
  • PT P1 P2 P3 .....

24
Gases in the Air
  • The of gases in air Partial pressure (STP)
  • 78.08 N2 593.4 mmHg
  • 20.95 O2 159.2 mmHg
  • 0.94 Ar 7.1 mmHg
  • 0.03 CO2 0.2 mmHg
  • PAIR PN PO PAr PCO 760 mmHg
  • 2 2
    2
  • Total Pressure 760 mm Hg

25
Learning Check C6
  • A.If the atmospheric pressure today is 745 mm Hg,
    what is the partial pressure (mm Hg) of O2 in the
    air?
  • 1) 35.6 2) 156 3) 760
  • B. At an atmospheric pressure of 714, what is the
    partial pressure (mm Hg) N2 in the air?
  • 1) 557 2) 9.14 3) 0.109

26
Solution C6
  • A.If the atmospheric pressure today is 745 mm Hg,
    what is the partial pressure (mm Hg) of O2 in the
    air?
  • 2) 156
  • B. At an atmospheric pressure of 714, what is the
    partial pressure (mm Hg) N2 in the air?
  • 1) 557

27
Partial Pressures
  • The total pressure of a gas mixture depends
  • on the total number of gas particles, not on
  • the types of particles.
  • P 1.00 atm P 1.00
    atm

1 mole H2
0.5 mole O2 0.3 mole He 0.2 mole Ar
28
Health Note
  • When a scuba diver is several hundred feet
  • under water, the high pressures cause N2 from
    the tank air to dissolve in the blood. If the
    diver rises too fast, the dissolved N2 will form
    bubbles in the blood, a dangerous and painful
    condition called "the bends". Helium, which is
    inert, less dense, and does not dissolve in the
    blood, is mixed with O2 in scuba tanks used for
    deep descents.

29
Learning Check C7
  • A 5.00 L scuba tank contains 1.05 mole of O2
    and 0.418 mole He at 25C. What is the partial
    pressure of each gas, and what is the total
    pressure in the tank?

30
Solution C7
  • P nRT PT PO PHe
  • V
    2
  • PT 1.47 mol x 0.0821 L-atm x 298 K
  • 5.00 L (K mol)
  • 7.19 atm
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