I. The Gas Laws Ch. 14 - Gases. A. Boyle’s Law b The pressure and volume of a gas are inversely...

I. The Gas Laws

Ch. 14 - GasesCh. 14 - Gases

A. Boyle’s LawA. Boyle’s LawA. Boyle’s LawA. Boyle’s Law

The pressure and volume of a gas are inversely related

• at constant mass & temp

P1V1 = P2V2

A. Boyle’s LawA. Boyle’s LawA. Boyle’s LawA. Boyle’s Law

B. Charles’ LawB. Charles’ LawB. Charles’ LawB. Charles’ Law

The volume and absolute temperature (K) of a gas are directly related • at constant mass & pressure

V1 = V2

B. Charles’ LawB. Charles’ LawB. Charles’ LawB. Charles’ Law

A. Avogadro’s PrincipleA. Avogadro’s PrincipleA. Avogadro’s PrincipleA. Avogadro’s Principle

Equal volumes of gases contain equal numbers of moles• at constant temp & pressure• true for any gas

V1 = V2

= kPVPTVT

D. Combined Gas LawD. Combined Gas LawD. Combined Gas LawD. Combined Gas Law

P1V1T2n2 = P2V2T1n1

GIVEN:

V1 = 473 cm3

T1 = 36°C = 309K

V2 = ?

T2 = 94°C = 367K

P1V1T2 = P2V2T1

E. Gas Law ProblemsE. Gas Law ProblemsE. Gas Law ProblemsE. Gas Law Problems

A gas occupies 473 cm3 at 36°C. Find its volume at 94°C.

CHARLES’ LAW

(473 cm3)(367 K)=V2(309 K)

V2 = 562 cm3

GIVEN:

V1 = 100. mL

P1 = 150. kPa

V2 = ?

P2 = 200. kPa

P1V1T2 = P2V2T1

A gas occupies 100. mL at 150. kPa. Find its volume at 200. kPa.

BOYLE’S LAW

(150.kPa)(100.mL)=(200.kPa)V2

V2 = 75.0 mL

GIVEN:

V1 = 2.00 L

n1 = 5.00 moles

n2 = 10.0 moles

V2 = ?

V1n2 = V2n1

(2.00 L)(10.0 moles)

=(5.00 moles) V2

V2 = 4.00 L

E. Gas Law ProblemsE. Gas Law ProblemsE. Gas Law ProblemsE. Gas Law Problems A sample of gas occupies 2.00 L with 5.00 moles present.

What would happen to the volume if the number of moles is increased to 10.0?

V n AVOGADRO’S LAW

GIVEN:

V1 = 7.84 cm3

P1 = 71.8 kPa

T1 = 25°C = 298 K

V2 = ?

P2 = 101.325 kPa

T2 = 273 K

P1V1T2 = P2V2T1

(71.8 kPa)(7.84 cm3)(273 K)

=(101.325 kPa) V2 (298 K)

V2 = 5.09 cm3

A gas occupies 7.84 cm3 at 71.8 kPa & 25°C. Find its volume at STP.

P T VCOMBINED GAS LAW

Ch. 14 - GasesCh. 14 - Gases

II. Two More LawsII. Two More Laws

B. Dalton’s LawB. Dalton’s LawB. Dalton’s LawB. Dalton’s Law

The total pressure of a mixture of gases equals the sum of the partial pressures of the individual gases.

Ptotal = P1 + P2 + ...When a H2 gas is collected by water displacement, the gas in the collection bottle is actually a mixture of H2 and water vapor.

GIVEN:

PH2 = ?

Ptotal = 94.4 kPa

PH2O = 2.72 kPa

Ptotal = PH2 + PH2O

94.4 kPa = PH2 + 2.72 kPa

PH2 = 91.7 kPa

Hydrogen gas is collected over water at 22.5°C. Find the pressure of the dry gas if the atmospheric pressure is 94.4 kPa.

Look up water-vapor pressure on p.899 for 22.5°C.

Sig Figs: Round to least number of decimal places.

The total pressure in the collection bottle is equal to atmospheric pressure and is a mixture of H2 and water vapor.

GIVEN:

Pgas = ?

Ptotal = 742.0 torr

PH2O = 42.2 torr

Ptotal = Pgas + PH2O

742.0 torr = PH2 + 42.2 torr

Pgas = 699.8 torr

A gas is collected over water at a temp of 35.0°C when the barometric pressure is 742.0 torr. What is the partial pressure of the dry gas?

Look up water-vapor pressure on p.899 for 35.0°C.

Sig Figs: Round to least number of decimal places.

The total pressure in the collection bottle is equal to barometric pressure and is a mixture of the “gas” and water vapor.

Ideal Gas LawIdeal Gas Law

Ch. 14 GasesCh. 14 Gases

A. Ideal Gas LawA. Ideal Gas LawA. Ideal Gas LawA. Ideal Gas Law

= kUNIVERSAL GAS

CONSTANTR=0.0821 Latm/molK

R=8.315 dm3kPa/molK

You don’t need to memorize these values!

Merge the Combined Gas Law with Avogadro’s Principle:

A. Ideal Gas LawA. Ideal Gas LawA. Ideal Gas LawA. Ideal Gas Law

UNIVERSAL GAS CONSTANT

R=0.0821 Latm/molKR=8.315

dm3kPa/molK

PV=nRT

You don’t need to memorize these values!

GIVEN:

P = ? atm

n = 0.412 mol

T = 16°C = 289 K

V = 3.25 LR = 0.0821Latm/molK

PV = nRT

P(3.25)=(0.412)(0.0821)(289) L mol Latm/molK K

P = 3.01 atm

C. Ideal Gas Law ProblemsC. Ideal Gas Law ProblemsC. Ideal Gas Law ProblemsC. Ideal Gas Law Problems Calculate the pressure in atmospheres of

0.412 mol of He at 16°C & occupying 3.25 L.

GIVEN:

n = 85 g

T = 25°C = 298 K

P = 104.5 kPaR = 8.315 dm3kPa/molK

C. Ideal Gas Law ProblemsC. Ideal Gas Law ProblemsC. Ideal Gas Law ProblemsC. Ideal Gas Law Problems

Find the volume of 85 g of O2 at 25°C and 104.5 kPa.

= 2.7 mol

85 g 1 mol = 2.7 mol

32.00 g

PV = nRT(104.5)V=(2.7) (8.315) (298) kPa mol dm3kPa/molK K

V = 64 dm3

I. The Gas Laws Ch. 14 - Gases. A. Boyle’s Law b The pressure and volume of a gas are inversely...

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