CHEMISTRY:PRIN.+REACTIONS-OWLV2 ACCESS
CHEMISTRY:PRIN.+REACTIONS-OWLV2 ACCESS
8th Edition
ISBN: 9781305079298
Author: Masterton
Publisher: Cengage Learning
bartleby

Videos

Textbook Question
Book Icon
Chapter 12, Problem 71QAP

Consider the system

A ( g ) + 2 B ( g ) + C ( g ) 2D ( g ) at 25°C. At zero time, only A, B, and C are present. The reaction reaches equilibrium 10 min after the reaction is initiated. Partial pressures of A, B, and D are written as PA, PB, and PD. Answer the questions below, using LT (for is less than), GT (for is greater than), EQ (for is equal to), or MI (for more information required).

(a) PD at 11 min PD at 12 min.

(b) PA at 5 min PA at 7 min.

(c) K for the forward reaction K for the reverse reaction.

(d) At equilibrium, K Q.

(e) After the system is at equilibrium, more of gas B is added. After the system returns to equilibrium, K before the addition of B K after the addition of B.

(f) The same reaction is initiated, this time with a catalyst K for the system without a catalyst the system with a catalyst.

(g) K for the formation of one mole of D K for the formation of two moles of D.

(h) The temperature of the system is increased to 35°C. PB at equilibrium at 25°C PB at equilibrium at 35°C.

(i) Ten more grams of C are added to the system. PB before the addition of C PB after the addition of C.

Expert Solution
Check Mark
Interpretation Introduction

(a)

Interpretation:

The partial pressure of D needs to be compared at time 11 min and 12 min.

Concept introduction:

The system is said to be in equilibrium if the there is no change in the partial pressure or concentration of reactant and product takes place.

For a general equilibrium reaction as follows:

A(g)+B(g)C(g)+D(g)

The expression for the equilibrium constant is represented as follows:

K=(PC)(PD)(PA)(PB)

Here, to calculate the equilibrium constant, the values of partial pressure of all the species in reactant and product side are required.

Answer to Problem 71QAP

Partial pressure of D gas at 11 min will be equal to (EQ) the partial pressure of D at 12 min.

Explanation of Solution

The given reaction is as follows:

A(g)+2B(g)+C(s)2D(g)

At zero time, only A, B and C is present.

After 10 min, equilibrium is reached.

Thus, the partial pressure of each gas after 10 min will be equal. Therefore, partial pressure of D gas at 11 min will be equal the partial pressure of D at 12 min.

Expert Solution
Check Mark
Interpretation Introduction

(b)

Interpretation:

The partial pressure of A needs to be compared at time 5 min and 7 min.

Concept introduction:

The system is said to be in equilibrium if the there is no change in the partial pressure or concentration of reactant and product takes place.

Answer to Problem 71QAP

The partial pressure of A gas at 5 min will be greater than (GT) the partial pressure of A gas at 7 min.

Explanation of Solution

The given reaction is as follows:

A(g)+2B(g)+C(s)2D(g)

At zero time, only A, B and C is present.

After 10 min, equilibrium is reached.

Since, reaction is moving in forward direction, the partial pressure of A decreases with increase in time.

Therefore, the partial pressure of A gas at 5 min will be greater than the partial pressure of A gas at 7 min.

Expert Solution
Check Mark
Interpretation Introduction

(c)

Interpretation:

The value of K for the forward reaction needs to be compared with the reverse reaction.

Concept introduction:

The system is said to be in equilibrium if the there is no change in the partial pressure or concentration of reactant and product takes place.

For a general equilibrium reaction as follows:

A(g)+B(g)C(g)+D(g)

The equilibrium constant for the direction of reaction is more in which it is moving. If the reaction is in forward direction, K for forward reaction is more and if it is moving in reverse direction, K for reverse reaction is more.

Answer to Problem 71QAP

The value of K for forward reaction is greater than (GT) K for backward or reverse reaction.

Explanation of Solution

The given reaction is as follows:

A(g)+2B(g)+C(s)2D(g)

At zero time, only A, B and C is present.

After 10 min, equilibrium is reached.

Initially, the partial pressure of gas D is not given thus, the reaction is moving in forward direction.

Therefore, the value of K for forward reaction is greater than K for backward or reverse reaction.

Expert Solution
Check Mark
Interpretation Introduction

(d)

Interpretation:

The relation between the value of K and Q at equilibrium needs to be determined.

Concept introduction:

The system is said to be in equilibrium if the there is no change in the partial pressure or concentration of reactant and product takes place.

Answer to Problem 71QAP

The value of K is equal to (EQ) the value of Q or reaction quotient at equilibrium.

Explanation of Solution

The given reaction is as follows:

A(g)+2B(g)+C(s)2D(g)

At zero time, only A, B and C is present.

After 10 min, equilibrium is reached.

Since, there is no change in the concentration of species takes place at equilibrium, the value of K is equal to the value of Q or reaction quotient at equilibrium.

Expert Solution
Check Mark
Interpretation Introduction

(e)

Interpretation:

If B is added after equilibrium, the change in K needs to be determined.

Concept introduction:

According to Le Chatelier’s principle, if at equilibrium, any change in temperature, concentration or pressure is applied to a system, the shift in equilibrium takes place to counteract the change.

Also, on compressing a system, the total pressure of the system increases thus, reaction shifts to decrease the total pressure and number of moles of gaseous species.

Opposite to this on expansion, the total pressure of the system decreases thus, reaction shifts to increase the total pressure and number of moles of gaseous species.

Only change in temperature can change the value of K, in other cases the value of K remains the same.

There are 3 conditions that can change the equilibrium direction in a system:

  1. Addition and removal of gaseous species.
  2. Expansion and compression of the system.
  3. Change in temperature of the system.

Answer to Problem 71QAP

The value of K before addition of B is less than (LT) K after the addition.

Explanation of Solution

The given reaction is as follows:

A(g)+2B(g)+C(s)2D(g)

At zero time, only A, B and C is present.

After 10 min, equilibrium is reached.

After equilibrium, if more gas B is added, the reaction shifts in forward direction to decrease the partial pressure of gas B and the value of K increase.

Therefore, the value of K before addition of B is less than K after the addition.

Expert Solution
Check Mark
Interpretation Introduction

(f)

Interpretation:

The value of K with or without catalyst needs to be compared.

Concept introduction:

Catalyst increases the rate of the reaction; it does not affect the amount of product formed in the reaction. Therefore, it does not change the value of equilibrium constant for a reaction.

Answer to Problem 71QAP

The value of K with or without the catalyst is equal. (EQ)

Explanation of Solution

The given reaction is as follows:

A(g)+2B(g)+C(s)2D(g)

At zero time, only A, B and C is present.

After 10 min, equilibrium is reached.

In the presence of catalyst, the value of K remains the same. The presence of catalyst only increases the rate of reaction, the amount of product formed remains the same thus, the value of K remains the same.

Therefore, the value of K with or without the catalyst is equal.

Expert Solution
Check Mark
Interpretation Introduction

(g)

Interpretation:

If temperature of the system is increased after 20 min, the change in partial pressure of A needs to be determined.

Concept introduction:

The system is said to be in equilibrium if the there is no change in the partial pressure or concentration of reactant and product takes place.

For a general equilibrium reaction as follows:

A(g)+B(g)C(g)+D(g)

The expression for the equilibrium constant is represented as follows:

K=(PC)(PD)(PA)(PB)

Here, to calculate the equilibrium constant, the values of partial pressure of all the species in reactant and product side are required.

Answer to Problem 71QAP

The value of K for formation of 1 mol of D will be less than (LT) the value of K for formation of 2 mol of D.

Explanation of Solution

The given reaction is as follows:

A(g)+2B(g)+C(s)2D(g)

At zero time, only A, B and C is present.

After 10 min, equilibrium is reached.

The number of moles of gases is directly proportional to the partial pressure. If number of moles increases, partial pressure also increases.

For product, if partial pressure increases the value of K also increases thus, the value of K for formation of 1 mol of D will be less than the value of K for formation of 2 mol of D.

Expert Solution
Check Mark
Interpretation Introduction

(h)

Interpretation:

The change in partial pressure of B due to increase in temperature at equilibrium needs to be determined.

Concept introduction:

According to Le Chatelier’s principle, if at equilibrium, any change in temperature, concentration or pressure is applied to a system, the shift in equilibrium takes place to counteract the change.

Also, on compressing a system, the total pressure of the system increases thus, reaction shifts to decrease the total pressure and number of moles of gaseous species.

Opposite to this on expansion, the total pressure of the system decreases thus, reaction shifts to increase the total pressure and number of moles of gaseous species.

Only change in temperature can change the value of K, in other cases the value of K remains the same.

There are 3 conditions that can change the equilibrium direction in a system:

  1. Addition and removal of gaseous species.
  2. Expansion and compression of the system.
  3. Change in temperature of the system.

Answer to Problem 71QAP

The change in value of K or partial pressure of B cannot be determined due to increase in temperature.(MI)

Explanation of Solution

The given reaction is as follows:

A(g)+2B(g)+C(s)2D(g)

At zero time, only A, B and C is present.

After 10 min, equilibrium is reached.

If temperature of the system is increases, more information is required to determine the change in partial pressure of gas B.

The value of K depends on the temperature, but it also depends on the sign of the change in enthalpy of the reaction which depends on the type of reaction as if it is endothermic or exothermic reaction.

For exothermic reaction, the value of change in enthalpy is negative and for such reaction, the value of K decreases with increase in temperature.

And, for endothermic reaction, the value of change in enthalpy is positive and for such reaction, the value of K increases with increase in temperature.

Since, any information related to type of reaction or change in enthalpy, the change in value of K or partial pressure of B cannot be determined due to increase in temperature.

Expert Solution
Check Mark
Interpretation Introduction

(i)

Interpretation:

The change in the partial pressure of A due to addition of 10 g of C to the system needs to be determined.

Concept introduction:

The system is said to be in equilibrium if the there is no change in the partial pressure or concentration of reactant and product takes place.

For a general equilibrium reaction as follows:

A(g)+B(g)C(g)+D(g)

The expression for the equilibrium constant is represented as follows:

K=(PC)(PD)(PA)(PB)

Here, to calculate the equilibrium constant, the values of partial pressure of all the species in reactant and product side are required.

Any species in pure solid and liquid phase does not participate in equilibrium expression thus, it does not affect the equilibrium of the reaction.

Answer to Problem 71QAP

The partial pressure of B after the addition of 10 g more solid C will be equal to (EQ) the partial pressure of B before the addition.

Explanation of Solution

The given reaction is as follows:

A(g)+2B(g)+C(s)2D(g)

At zero time, only A, B and C is present.

After 10 min, equilibrium is reached.

If 10 g of more solid C is added to the system, there will be no change in the equilibrium takes place. This is because the species in solid phase cannot affect the value of K as they are not present in the equilibrium expression.

Thus, the partial pressure of B after the addition of 10 g more solid C will be equal to the partial pressure of B before the addition.

Want to see more full solutions like this?

Subscribe now to access step-by-step solutions to millions of textbook problems written by subject matter experts!
Previous
Chapter 12, Problem 70QAP
Next
Chapter 12, Problem 72QAP
Students have asked these similar questions
Using the following two half-reactions, determine the pH range in which $NO_2^-\ (aq)$ cannot be found as the predominant chemical species in water.* $NO_3^-(aq)+10H^+(aq)+8e^-\rightarrow NH_4^+(aq)+3H_2O(l),\ pE^{\circ}=14.88$* $NO_2^-(aq)+8H^+(aq)+6e^-\rightarrow NH_4^+(aq)+2H_2O(l),\ pE^{\circ}=15.08$
Indicate characteristics of oxodec acid.
What is the final product when hexanedioic acid reacts with 1º PCl5 and 2º NH3.

Chapter 12 Solutions

CHEMISTRY:PRIN.+REACTIONS-OWLV2 ACCESS

Ch. 12 - The following data are for the system A(g)2B(g)...Ch. 12 - The following data are for the system A(g)2B(g)...Ch. 12 - Prob. 3QAPCh. 12 - Complete the table below for the reaction...Ch. 12 - Write the equilibrium expressions (K) for the...Ch. 12 - Write the equilibrium expressions (K) for the...Ch. 12 - Write the equilibrium expressions (K) for the...Ch. 12 - Write the equilibrium expressions (K) for the...Ch. 12 - Given the following descriptions of reversible...Ch. 12 - Given the following descriptions of reversible...
Ch. 12 - Write an equation for an equilibrium system that...Ch. 12 - Write a chemical equation for an equilibrium...Ch. 12 - Consider the following reaction at 250C:...Ch. 12 - Consider the following reaction at 1000 C:...Ch. 12 - At 627C, K=0.76 for the reaction...Ch. 12 - At 800C, K=2.2104 for the following reaction...Ch. 12 - Prob. 17QAPCh. 12 - Given the following data at 25C...Ch. 12 - Given the following data at a certain temperature,...Ch. 12 - Consider the following hypothetical reactions and...Ch. 12 - When one mole of carbon disulfide gas reacts with...Ch. 12 - Calculate K for the formation of methyl alcohol at...Ch. 12 - Ammonium carbamate solid (NH4CO2NH2) decomposes at...Ch. 12 - Consider the decomposition at 25C of one mole of...Ch. 12 - Consider the decomposition of ammonium hydrogen...Ch. 12 - A sealed flask has 0.541 atm of SO3 at 1000 K. The...Ch. 12 - A gaseous reaction mixture contains 0.30 atm SO2,...Ch. 12 - For the system PCl5(g)PCl3(g)+Cl2(g)K is 26 at...Ch. 12 - The reversible reaction between hydrogen chloride...Ch. 12 - The reversible reaction between hydrogen chloride...Ch. 12 - A compound, X, decomposes at 131C according to the...Ch. 12 - Consider the following reaction at 75C:...Ch. 12 - Consider the reaction between nitrogen and steam:...Ch. 12 - At 500C, k for the for the formation of ammonia...Ch. 12 - At a certain temperature, K is 4.9 for the...Ch. 12 - At a certain temperature, K=0.29 for the...Ch. 12 - For the reaction N2(g)+2H2O(g)2NO(g)+2H2(g) K is...Ch. 12 - Nitrogen dioxide can decompose to nitrogen oxide...Ch. 12 - Consider the following reaction:...Ch. 12 - Consider the hypothetical reaction at 325C...Ch. 12 - At a certain temperature, the equilibrium constant...Ch. 12 - At 460C, the reaction SO2(g)+NO2(g)NO(g)+SO3(g)...Ch. 12 - Solid ammonium iodide decomposes to ammonia and...Ch. 12 - Consider the following decomposition at 80C....Ch. 12 - Hydrogen cyanide, a highly toxic gas, can...Ch. 12 - At 800 K, hydrogen iodide can decompose into...Ch. 12 - For the following reactions, predict whether the...Ch. 12 - Follow the directions of Question 47 for the...Ch. 12 - Consider the system SO3(g)SO2(g)+12 O2(g)H=98.9kJ...Ch. 12 - Consider the system...Ch. 12 - Predict the direction in which each of the...Ch. 12 - Predict the direction in which each of the...Ch. 12 - At a certain temperature, nitrogen and oxygen...Ch. 12 - Consider the following hypothetical reaction:...Ch. 12 - Iodine chloride decomposes at high temperatures to...Ch. 12 - Sulfur oxychloride, SO2Cl2, decomposes to sulfur...Ch. 12 - For the following reaction C(s)+2H2(g)CH4(g)...Ch. 12 - For the system 2SO3(g)2SO2(g)+O2(g) K=1.32 at 627....Ch. 12 - For a certain reaction, H is +33 kJ. What is the...Ch. 12 - Prob. 60QAPCh. 12 - Hemoglobin (Hb) binds to both oxygen and carbon...Ch. 12 - Mustard gas, used in chemical warfare in World War...Ch. 12 - Prob. 63QAPCh. 12 - For the decomposition of CaCO3 at 900C, K=1.04....Ch. 12 - Isopropyl alcohol is the main ingredient in...Ch. 12 - Consider the equilibrium H2(g)+S(s)H2S(g)When this...Ch. 12 - Prob. 67QAPCh. 12 - The following data apply to the unbalanced...Ch. 12 - Consider the reaction: A(g)+2B(g)+C(s)2D(g)At 25C,...Ch. 12 - For the reaction C(s)+CO2(g)2CO(g) K=168 at 1273...Ch. 12 - Consider the system A(g)+2B(g)+C(g)2D(g)at 25C. At...Ch. 12 - The graph below is similar to that of Figure 12.2....Ch. 12 - Prob. 73QAPCh. 12 - The figures below represent the following reaction...Ch. 12 - Prob. 75QAPCh. 12 - Prob. 76QAPCh. 12 - Consider the following reaction at a certain...Ch. 12 - Prob. 78QAPCh. 12 - Ammonia can decompose into its constituent...Ch. 12 - Hydrogen iodide gas decomposes to hydrogen gas and...Ch. 12 - For the system SO3(g)SO2(g)+12 O2(g)at 1000 K,...Ch. 12 - A student studies the equilibrium I2(g)2I(g)at a...Ch. 12 - At a certain temperature, the reaction...Ch. 12 - Benzaldehyde, a flavoring agent, is obtained by...Ch. 12 - Prob. 85QAPCh. 12 - Prob. 86QAP
Knowledge Booster
Background pattern image
Chemistry
Learn more about
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, chemistry and related others by exploring similar questions and additional content below.
Similar questions
SEE MORE QUESTIONS
Recommended textbooks for you
Text book image
Chemistry: The Molecular Science
Chemistry
ISBN:9781285199047
Author:John W. Moore, Conrad L. Stanitski
Publisher:Cengage Learning
Text book image
Chemistry & Chemical Reactivity
Chemistry
ISBN:9781337399074
Author:John C. Kotz, Paul M. Treichel, John Townsend, David Treichel
Publisher:Cengage Learning
Text book image
Chemistry & Chemical Reactivity
Chemistry
ISBN:9781133949640
Author:John C. Kotz, Paul M. Treichel, John Townsend, David Treichel
Publisher:Cengage Learning
Text book image
Introductory Chemistry: A Foundation
Chemistry
ISBN:9781285199030
Author:Steven S. Zumdahl, Donald J. DeCoste
Publisher:Cengage Learning
Text book image
Chemistry
Chemistry
ISBN:9781305957404
Author:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Publisher:Cengage Learning
Text book image
Chemistry: An Atoms First Approach
Chemistry
ISBN:9781305079243
Author:Steven S. Zumdahl, Susan A. Zumdahl
Publisher:Cengage Learning
SEE MORE TEXTBOOKS
Chemical Equilibria and Reaction Quotients; Author: Professor Dave Explains;https://www.youtube.com/watch?v=1GiZzCzmO5Q;License: Standard YouTube License, CC-BY