OWLv2 for Moore/Stanitski's Chemistry: The Molecular Science, 5th Edition, [Instant Access], 1 term (6 months)
OWLv2 for Moore/Stanitski's Chemistry: The Molecular Science, 5th Edition, [Instant Access], 1 term (6 months)
5th Edition
ISBN: 9781285460420
Author: John W. Moore; Conrad L. Stanitski
Publisher: Cengage Learning US
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Chapter 8, Problem 54QRT

(a)

Interpretation Introduction

Interpretation:

Final pressure inside the system has to be determined.

Concept Introduction:

Dalton’s law of partial pressure:

According to this law, the total pressure exerted by each gas in a mixture is equal to the sum of the individual partial pressure of the gases.

Boyle’s law:

At fixed temperature and number of molecules, the volume of a fixed amount of gas is inversely proportional to the pressure exerted by the gas.

  P1V(n,Twillbeconstant)PV=constantP1V1=P2V2

(a)

Expert Solution
Check Mark

Answer to Problem 54QRT

Final pressure inside the system is 1.98 atm.

Explanation of Solution

Given data is shown below,

  PO2 = 1.46 atmPN2 = 0.908 atmPAr = 2.71 atmVO2 = 3.0 LVN2 = 2.0 LVAr = 5.0 LVtotal = VO2+ VN2+  VAr = 3.0 L+ 2.0 L + 5.0 L = 10.0 L

Final pressure of O2, N2 and Ar is calculated using Boyle’s law as follows,

  PiVi = PfVfPf = PiViVf

Substitute the values to determine the final pressure,

  Pf,O2 = (1.46 atm)(3.0 L)10.0 L= 0.438 atmPf,N2 = (0.908 atm)(2.0 L)10.0 L= 0.182 atmPf,Ar = (2.71 atm)(5.0 L)10.0 L= 1.36 atm

According to Dalton’s law, the total pressure of gases in a mixture of gases is the sum of the pressure of each gas in the mixture. Hence, final pressure inside the system can be determined as follows,

  Ptotal = Pf,O2Pf,N2+Pf,Ar=0.438 atm + 0.182 atm + 1.36 atm= 1.98 atm

Final pressure inside the system is 1.98 atm.

(b)

Interpretation Introduction

Interpretation:

Partial pressure of O2, N2 and Ar has to be determined.

Concept Introduction:

Refer to (a).

(b)

Expert Solution
Check Mark

Answer to Problem 54QRT

Partial pressure of O2 is 0.438 atm.

Partial pressure of N2 is 0.182 atm.

Partial pressure of Ar is 1.36 atm.

Explanation of Solution

Given data is shown below,

  PO2 = 1.46 atmPN2 = 0.908 atmPAr = 2.71 atmVO2 = 3.0 LVN2 = 2.0 LVAr = 5.0 LVtotal = VO2+ VN2+  VAr = 3.0 L+ 2.0 L + 5.0 L = 10.0 L

Final pressure of O2, N2 and Ar is calculated using Boyle’s law as follows,

  PiVi = PfVfPf = PiViVf

Substitute the values to determine the final pressure,

  Pf,O2 = (1.46 atm)(3.0 L)10.0 L= 0.438 atmPf,N2 = (0.908 atm)(2.0 L)10.0 L= 0.182 atmPf,Ar = (2.71 atm)(5.0 L)10.0 L= 1.36 atm

Partial pressure of the gas is the pressure caused by each gas if it was alone inside the container.

  PO2 = Pf,O2 = 0.438 atmPN2 = Pf,N2 = 0.182 atmPAr = Pf,Ar = 1.36 atm

Partial pressure of O2 is 0.438 atm.

Partial pressure of N2 is 0.182 atm.

Partial pressure of Ar is 1.36 atm.

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Chapter 8 Solutions

OWLv2 for Moore/Stanitski's Chemistry: The Molecular Science, 5th Edition, [Instant Access], 1 term (6 months)

Ch. 8.4 - Prob. 8.5PSPCh. 8.4 - Prob. 8.8CECh. 8.4 - Prob. 8.9CECh. 8.4 - Prob. 8.6PSPCh. 8.4 - Prob. 8.10CECh. 8.5 - Prob. 8.7PSPCh. 8.5 - Prob. 8.8PSPCh. 8.5 - Prob. 8.11ECh. 8.6 - Prob. 8.9PSPCh. 8.6 - Prob. 8.12CECh. 8.6 - Prob. 8.13ECh. 8.6 - Prob. 8.10PSPCh. 8.6 - Prob. 8.11PSPCh. 8.7 - Prob. 8.12PSPCh. 8.7 - Prob. 8.14ECh. 8.7 - Prob. 8.16CECh. 8.7 - Prob. 8.17ECh. 8.8 - Prob. 8.13PSPCh. 8.8 - Prob. 8.18ECh. 8.8 - Look up the van der Waals constants, b, for H2,...Ch. 8.11 - List as many natural sources of CO2 as you can,...Ch. 8.11 - Prob. 8.21ECh. 8.11 - Prob. 8.22CECh. 8.11 - Prob. 8.23CECh. 8.11 - Prob. 8.24CECh. 8.12 - Make these conversions for atmospheric...Ch. 8.12 - Prob. 8.25ECh. 8 - In a typical automobile engine, a gasoline...Ch. 8 - Prob. 1QRTCh. 8 - Prob. 2QRTCh. 8 - Prob. 3QRTCh. 8 - Prob. 4QRTCh. 8 - Prob. 5QRTCh. 8 - Prob. 6QRTCh. 8 - Prob. 7QRTCh. 8 - Prob. 8QRTCh. 8 - Prob. 9QRTCh. 8 - Prob. 10QRTCh. 8 - Prob. 11QRTCh. 8 - Prob. 12QRTCh. 8 - Prob. 13QRTCh. 8 - Prob. 14QRTCh. 8 - Prob. 15QRTCh. 8 - Prob. 16QRTCh. 8 - Prob. 17QRTCh. 8 - Prob. 18QRTCh. 8 - Some butane, the fuel used in backyard grills, is...Ch. 8 - Prob. 20QRTCh. 8 - Suppose you have a sample of CO2 in a gas-tight...Ch. 8 - Prob. 22QRTCh. 8 - Prob. 23QRTCh. 8 - Prob. 24QRTCh. 8 - A sample of gas occupies 754 mL at 22 C and a...Ch. 8 - Prob. 26QRTCh. 8 - Prob. 27QRTCh. 8 - Prob. 28QRTCh. 8 - Prob. 29QRTCh. 8 - Prob. 30QRTCh. 8 - Prob. 31QRTCh. 8 - Prob. 32QRTCh. 8 - Calculate the molar mass of a gas that has a...Ch. 8 - Prob. 34QRTCh. 8 - Prob. 35QRTCh. 8 - Prob. 36QRTCh. 8 - Prob. 37QRTCh. 8 - Prob. 38QRTCh. 8 - Prob. 39QRTCh. 8 - Prob. 40QRTCh. 8 - Prob. 41QRTCh. 8 - Prob. 42QRTCh. 8 - Prob. 43QRTCh. 8 - Prob. 44QRTCh. 8 - Prob. 45QRTCh. 8 - Prob. 46QRTCh. 8 - Prob. 47QRTCh. 8 - Prob. 48QRTCh. 8 - The build-up of excess carbon dioxide in the air...Ch. 8 - Prob. 50QRTCh. 8 - Prob. 51QRTCh. 8 - Prob. 52QRTCh. 8 - Prob. 53QRTCh. 8 - Prob. 54QRTCh. 8 - Prob. 55QRTCh. 8 - Benzene has acute health effects. For example, it...Ch. 8 - The mean fraction by mass of water vapor and cloud...Ch. 8 - Acetylene can be made by reacting calcium carbide...Ch. 8 - Prob. 59QRTCh. 8 - You are given two flasks of equal volume. Flask A...Ch. 8 - Prob. 61QRTCh. 8 - Prob. 62QRTCh. 8 - Prob. 63QRTCh. 8 - Prob. 64QRTCh. 8 - Prob. 65QRTCh. 8 - Prob. 66QRTCh. 8 - Prob. 67QRTCh. 8 - Prob. 68QRTCh. 8 - Prob. 69QRTCh. 8 - Prob. 70QRTCh. 8 - Prob. 71QRTCh. 8 - Prob. 72QRTCh. 8 - Prob. 73QRTCh. 8 - Prob. 74QRTCh. 8 - Prob. 75QRTCh. 8 - Prob. 76QRTCh. 8 - Prob. 77QRTCh. 8 - Prob. 78QRTCh. 8 - Prob. 79QRTCh. 8 - Prob. 80QRTCh. 8 - Prob. 81QRTCh. 8 - Prob. 82QRTCh. 8 - Prob. 83QRTCh. 8 - Prob. 84QRTCh. 8 - Prob. 85QRTCh. 8 - Name a favorable effect of the global increase of...Ch. 8 - Prob. 87QRTCh. 8 - Assume that limestone, CaCO3, is used to remove...Ch. 8 - Prob. 89QRTCh. 8 - Prob. 90QRTCh. 8 - Prob. 91QRTCh. 8 - Prob. 92QRTCh. 8 - Prob. 93QRTCh. 8 - Prob. 94QRTCh. 8 - Prob. 95QRTCh. 8 - Prob. 96QRTCh. 8 - Prob. 97QRTCh. 8 - Prob. 98QRTCh. 8 - Prob. 99QRTCh. 8 - Prob. 100QRTCh. 8 - Prob. 101QRTCh. 8 - Prob. 102QRTCh. 8 - Prob. 103QRTCh. 8 - Prob. 104QRTCh. 8 - Prob. 105QRTCh. 8 - Prob. 106QRTCh. 8 - Prob. 107QRTCh. 8 - Prob. 108QRTCh. 8 - Prob. 109QRTCh. 8 - Consider these four gas samples, all at the same...Ch. 8 - Prob. 111QRTCh. 8 - Prob. 112QRTCh. 8 - Prob. 113QRTCh. 8 - Prob. 114QRTCh. 8 - Prob. 115QRTCh. 8 - Prob. 116QRTCh. 8 - Prob. 117QRTCh. 8 - Prob. 118QRTCh. 8 - Prob. 119QRTCh. 8 - Prob. 120QRTCh. 8 - Prob. 121QRTCh. 8 - Prob. 122QRTCh. 8 - Prob. 123QRTCh. 8 - Prob. 124QRTCh. 8 - Prob. 125QRTCh. 8 - Prob. 126QRTCh. 8 - Prob. 127QRTCh. 8 - Prob. 128QRTCh. 8 - Prob. 129QRTCh. 8 - Prob. 8.ACPCh. 8 - Prob. 8.BCP
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