Chemistry & Chemical Reactivity, Hybrid Edition (with OWLv2 24-Months Printed Access Card)
Chemistry & Chemical Reactivity, Hybrid Edition (with OWLv2 24-Months Printed Access Card)
9th Edition
ISBN: 9781285462530
Author: John C. Kotz, Paul M. Treichel, John Townsend, David Treichel
Publisher: Cengage Learning
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Chapter 10, Problem 106IL

(a)

Interpretation Introduction

Interpretation:

For the given two reactants and the products under given set of conditions the balanced equation, moles, mole fraction of the reactant, the unreacted amount of given reactant, partial pressure of given compounds should be determined.

Concept Introduction:

Balanced Chemical Equation:

The chemical reaction when the number of atoms present in the reactant side of the reaction should be equal to the number and the charge of atoms present in the product side of the reaction which then only be considered as balanced.

(a)

Expert Solution
Check Mark

Answer to Problem 106IL

  C3H8(g)+5O2(g)3CO2(g)+4H2O(l)

Explanation of Solution

The given reactants C3H8(g) and O2(g) reacts in order to give set of products like CO2(g) and H2O(l). In order to obtain the balanced chemical reaction the number of atoms present in given reactant and products are analyzed and the suitable coefficients are included before them in order to obtain the balanced equation.

Observing given reactant and products 3 should be included before CO2(g) in order to get equal number of carbon atoms on both sides then, 4 should be included before H2O(l) in order to obtain equal number of hydrogen atom on both sides and finally, 5 should be included before O2(g) so that the number of oxygen atoms present are balanced on the both sides of the equation.

Therefore, the balanced chemical equation is C3H8(g)+5O2(g)3CO2(g)+4H2O(l).

(b)

Interpretation Introduction

Interpretation:

For the given two reactants and the products under given set of conditions the moles, of given compounds should be determined.

Concept introduction:

Ideal gas equation:

Any gas is described by using four terms namely pressure, volume, temperature and the amount of gas.  Thus combining three laws namely Boyle’s, Charles’s Law and Avogadro’s Hypothesis the following equation could be obtained.  It is referred as ideal gas equation.

   nTPV = RnTPPV = nRTwhere,n = moles of gasP = pressureT = temperatureR = gas constant

Under some conditions gases don not behave like ideal gas that is they deviate from their ideal gas properties.  At lower temperature and at high pressures the gas tends to deviate and behave like real gases.

Boyle’s Law:

At given constant temperature conditions the mass of given ideal gas in inversely proportional to its volume.

Charles’s Law:

At given constant pressure conditions the volume of ideal gas is directly proportional to the absolute temperature.

Avogadro’s Hypothesis:

Two equal volumes of gases with same temperature and pressure conditions tend to have same number of molecules with it.

The relationship between partial pressure and Ptotal is

    Pi=χiPtotalwhere,Pi=partial pressureχi=molefractionPtotal=Totalpressure

(b)

Expert Solution
Check Mark

Answer to Problem 106IL

The number of moles of given species is 0.3178moles.

Explanation of Solution

The number of moles present in the given amount of the substance is calculated as follows,

  PV = nRTn = PVRT=5.1atm×1.50L0.0821×20oC=5.1atm×1.50L0.0821×(273.15+20)=7.650.0821×293.15=7.6524.07=0.3178moles.Since,Ptotal=Partialpressureof CO2(g)+Partialpressureof H2O(l)=0.10atm+5.0atm=5.1atm

(c)

Interpretation Introduction

Interpretation:

For the given two reactants and the products under given set of conditions the balanced equation, moles, mole fraction of the reactant, the unreacted amount of given reactant, partial pressure of given compounds should be determined.

Concept introduction:

Mole fraction: The mole fraction of denotes the individual presence of the component present in the given chemical reaction.

Consider general equation that contains reactants X and Y then the mole fraction of X is determined as follows,

  Mole fraction of Mole fraction of one component = Moles of that componentTotal moles present in the reactionMole fraction of X = Number of moles of XNumber of moles of X + Number of moles of Y

The relationship between partial pressure and Ptotal is

    Pi=χiPtotalwhere,Pi=partial pressureχi=molefractionPtotal=Totalpressure

(c)

Expert Solution
Check Mark

Answer to Problem 106IL

The mole fraction for the given species is equal to 0.1667

Explanation of Solution

Consider the given chemical reaction and calculate the mole fraction of C3H8(g) as follows,

Before the reaction there are only reactants present in the flask.

Mole fraction of C3H8(g) = Number of moles of C3H8(g)Number of moles of C3H8(g) + Number of moles of O2(g)=11+5=0.1667

(d)

Interpretation Introduction

Interpretation:

For the given two reactants and the products under given set of conditions the balanced equation, moles, mole fraction of the reactant, the unreacted amount of given reactant, partial pressure of given compounds should be determined.

Concept introduction:

Mole fraction: The mole fraction of denotes the individual presence of the component present in the given chemical reaction.

Consider general equation that contains reactants X and Y then the mole fraction of X is determined as follows,

  Mole fraction of Mole fraction of one component = Moles of that componentTotal moles present in the reactionMole fraction of X = Number of moles of XNumber of moles of X + Number of moles of Y

The relationship between partial pressure and Ptotal is

    Pi=χiPtotalwhere,Pi=partial pressureχi=molefractionPtotal=Totalpressure

(d)

Expert Solution
Check Mark

Answer to Problem 106IL

The amount of unreacted oxygen in the reaction flask is equal to 0.28045 moles.

Explanation of Solution

  PV = nRTInitial moles, nO2 = PVRT=5×1.50L0.0821×293.15K=0.3116moles

Initial moles of oxygen is 0.3116moles

  PV = nRTInitial moles, nC3H8 = PVRT=0.1×1.50L0.0821×293.15K=6.23×103moles

From the given conditions it is clear that C3H8(g) acts as limiting reagent hence the unreacted oxygen is calculated by subtracting the amount of available amount of oxygen with the amount needed by the C3H8(g).

  Amount of O2 needed by C3H8=6.23×10-3×5=0.0315molesExcess of O2=0.3116-0.03115 = 0.28045 moles of O2

(e)

Interpretation Introduction

Interpretation:

For the given two reactants and the products under given set of conditions the of given compounds should be determined.

Concept introduction:

Mole fraction: The mole fraction of denotes the individual presence of the component present in the given chemical reaction.

Consider general equation that contains reactants X and Y then the mole fraction of X is determined as follows,

  Mole fraction of Mole fraction of one component = Moles of that componentTotal moles present in the reactionMole fraction of X = Number of moles of XNumber of moles of X + Number of moles of Y

The relationship between partial pressure and Ptotal is

    Pi=χiPtotalwhere,Pi=partial pressureχi=molefractionPtotal=Totalpressure

(e)

Expert Solution
Check Mark

Answer to Problem 106IL

The partial pressure exerted by the given gas in the system is 2.19 atm

Explanation of Solution

The partial pressure for the gas CO2 is calculated as follows,

  Pi=χiPtotalPCO2=Moles of CO2Total moles×Ptotal=37×5.1 atm=2.19 atm

(f)

Interpretation Introduction

Interpretation:

For the given two reactants and the products under given set of conditions the partial pressure of given compounds should be determined.

Concept introduction:

Mole fraction: The mole fraction of denotes the individual presence exerted by the component present in the given chemical reaction.

Consider general equation that contains reactants X and Y then the mole fraction of X is determined as follows,

  Mole fraction of Mole fraction of one component = Moles of that componentTotal moles present in the reactionMole fraction of X = Number of moles of XNumber of moles of X + Number of moles of Y

The relationship between partial pressure and Ptotal is

    Pi=χiPtotalwhere,Pi=partial pressureχi=molefractionPtotal=Totalpressure

(f)

Expert Solution
Check Mark

Answer to Problem 106IL

The partial pressure exerted by the excess of oxygen after the reaction is 0.24 atm.

Explanation of Solution

The partial pressure for the unreacted oxygen is as follows,

  Pi=χiPtotalPO2=Moles of O2Total moles×Ptotal=0.280456×5.1 atm=0.24 atm

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Chapter 10 Solutions

Chemistry & Chemical Reactivity, Hybrid Edition (with OWLv2 24-Months Printed Access Card)

Ch. 10.3 - Prob. 1CYUCh. 10.3 - At 1.00 atm and 25 C, the density of dry air is...Ch. 10.3 - A 0.105-g sample of a gaseous compound has a...Ch. 10.3 - Which gas has the greatest density at 25 and 1.00...Ch. 10.3 - Prob. 2RCCh. 10.3 - Prob. 3RCCh. 10.4 - Prob. 1CYUCh. 10.4 - Diborane reacts with O2 to give boric oxide and...Ch. 10.4 - 2. If you mix 1.5 L of B2H6 with 4.0 L of O2, each...Ch. 10.5 - The halothane-oxygen mixture described in this...Ch. 10.5 - Prob. 1RCCh. 10.6 - Prob. 1CYUCh. 10.6 - What is the rms speed of chlorine molecules at...Ch. 10.6 - 2. The species identified with each curve in the...Ch. 10.7 - Prob. 1CYUCh. 10.7 - In Figure 10.17, ammonia gas and hydrogen chloride...Ch. 10.8 - Prob. 1RCCh. 10.8 - At sea level, atmospheric pressure is 1.00 atm....Ch. 10.8 - Prob. 2QCh. 10.8 - To stay aloft, a blimp must achieve neutral...Ch. 10 - Pressure (See Section 10.1 and Example 10.1.) The...Ch. 10 - The average barometric pressure at an altitude of...Ch. 10 - Indicate which represents the higher pressure in...Ch. 10 - Put the following in order of increasing pressure:...Ch. 10 - Prob. 5PSCh. 10 - Prob. 6PSCh. 10 - You have 3.5 L of NO at a temperature of 22.0 C....Ch. 10 - Prob. 8PSCh. 10 - Prob. 9PSCh. 10 - You have a sample of CO2 in flask A with a volume...Ch. 10 - You have a sample of gas in a flask with a volume...Ch. 10 - A sample of gas occupies 135 mL at 22.5 C; the...Ch. 10 - One of the cylinders of an automobile engine has a...Ch. 10 - A helium-filled balloon of the type used in...Ch. 10 - Nitrogen monoxide reacts with oxygen to give...Ch. 10 - Ethane bums in air to give H2O and CO2. 2 C2H6(g)...Ch. 10 - A 1.25-g sample of CO2 is contained in a 750.-mL...Ch. 10 - A balloon holds 30.0 kg of helium. What is the...Ch. 10 - A flask is first evacuated so that it contains no...Ch. 10 - Prob. 20PSCh. 10 - Prob. 21PSCh. 10 - Prob. 22PSCh. 10 - Forty miles above Earths surface, the temperature...Ch. 10 - Prob. 24PSCh. 10 - A gaseous organofluorine compound has a density of...Ch. 10 - Prob. 26PSCh. 10 - A 1 007-g sample of an unknown gas exerts a...Ch. 10 - A 0.0130-g sample of a gas with an empirical...Ch. 10 - A new boron hydride, BxHy, has been isolated. To...Ch. 10 - Acetaldehyde is a common liquid compound that...Ch. 10 - Iron reacts with hydrochloric acid to produce...Ch. 10 - Silane, SiH4, reacts with O2 to give silicon...Ch. 10 - Prob. 33PSCh. 10 - The hydrocarbon octane (C8H18) bums to give CO2...Ch. 10 - Prob. 35PSCh. 10 - A self-contained underwater breathing apparatus...Ch. 10 - What is the total pressure in atmospheres of a gas...Ch. 10 - A cylinder of compressed gas is labeled...Ch. 10 - A halothane-oxygen mixture (C2HBrCIF3 + O2) can be...Ch. 10 - A collapsed balloon is filled with He to a volume...Ch. 10 - You have two flasks of equal volume. Flask A...Ch. 10 - Equal masses of gaseous N2 and Ar are placed in...Ch. 10 - If the rms speed of an oxygen molecule is 4.28 ...Ch. 10 - Prob. 44PSCh. 10 - Place the following gases in order of increasing...Ch. 10 - Prob. 46PSCh. 10 - In each pair of gases below, tell which will...Ch. 10 - Prob. 48PSCh. 10 - Prob. 49PSCh. 10 - A sample of uranium fluoride is found to effuse at...Ch. 10 - Prob. 51PSCh. 10 - Prob. 52PSCh. 10 - In the text, it is stated that the pressure of...Ch. 10 - You want to store 165 g of CO2 gas in a 12.5-L...Ch. 10 - Consider a 5.00-L tank containing 325 g of H2O at...Ch. 10 - Consider a 5.00-L tank containing 375 g of Ar at a...Ch. 10 - Complete the following table:Ch. 10 - On combustion, 1.0 L of a gaseous compound of...Ch. 10 - You have a sample of helium gas at 33 C, and you...Ch. 10 - Prob. 60GQCh. 10 - Butyl mercaptan, C4H9SH, has a very bad odor and...Ch. 10 - Prob. 62GQCh. 10 - The temperature of the atmosphere on Mars can be...Ch. 10 - If you place 2.25 g of solid silicon in a 6.56-L...Ch. 10 - What volume (in liters) of O2, measured at...Ch. 10 - Nitroglycerin decomposes into four different gases...Ch. 10 - Ni(CO)4 can be made by reacting finely divided...Ch. 10 - Ethane bums in air to give H2O and CO2. 2 C2H6(g)...Ch. 10 - You have four gas samples: 1. 1.0 L of H2 at STP...Ch. 10 - Propane reacts with oxygen to give carbon dioxide...Ch. 10 - Iron carbonyl can be made by the direct reaction...Ch. 10 - Prob. 72GQCh. 10 - There are five compounds in the family of...Ch. 10 - A miniature volcano can be made in the laboratory...Ch. 10 - The density of air 20 km above Earths surface is...Ch. 10 - Prob. 76GQCh. 10 - Chlorine dioxide, ClO2, reacts with fluorine to...Ch. 10 - A xenon fluoride can be prepared by heating a...Ch. 10 - Prob. 79GQCh. 10 - Prob. 80GQCh. 10 - Prob. 81GQCh. 10 - Carbon dioxide, CO2, was shown lo effuse through a...Ch. 10 - Prob. 84GQCh. 10 - Prob. 85GQCh. 10 - Prob. 86GQCh. 10 - You are given 1.56 g of a mixture of KClO3 and...Ch. 10 - A study of climbers who reached the summit of...Ch. 10 - Nitrogen monoxide reacts with oxygen to give...Ch. 10 - Ammonia gas is synthesized by combining hydrogen...Ch. 10 - Nitrogen trifluoride is prepared by the reaction...Ch. 10 - Chlorine trifluoride, ClF3, is a valuable reagent...Ch. 10 - Prob. 93GQCh. 10 - Prob. 94GQCh. 10 - You have a 550.-mL tank of gas with a pressure of...Ch. 10 - Prob. 96ILCh. 10 - Prob. 97ILCh. 10 - Group 2A metal carbonates are decomposed to the...Ch. 10 - One way to synthesize diborane, B2H6, is the...Ch. 10 - You are given a solid mixture of NaNO2 and NaCl...Ch. 10 - You have 1.249 g of a mixture of NaHCO3 and...Ch. 10 - Prob. 102ILCh. 10 - Many nitrate salts can be decomposed by heating....Ch. 10 - You have a gas, one of the three known...Ch. 10 - Prob. 106ILCh. 10 - A 1.0-L flask contains 10.0 g each of O2 and CO2...Ch. 10 - If equal masses of O2 and N2 are placed in...Ch. 10 - You have two pressure-proof steel cylinders of...Ch. 10 - Prob. 110SCQCh. 10 - Prob. 111SCQCh. 10 - Each of four flasks is filled with a different...Ch. 10 - Prob. 113SCQCh. 10 - The sodium azide required for automobile air bags...Ch. 10 - Prob. 115SCQCh. 10 - Prob. 116SCQ
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