General Chemistry
General Chemistry
7th Edition
ISBN: 9780073402758
Author: Chang, Raymond/ Goldsby
Publisher: McGraw-Hill College
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Chapter 15, Problem 15.92QP

(a)

Interpretation Introduction

Interpretation:

The conditions of temperature and pressure which would favour the formation of products in both the primary and secondary stage has to be calculated using the data.

Concept Introduction:

Endothermic reaction:

In an endothermic reaction, heat will be a reactant. Therefore, increasing the temperature will shift the reaction from reactant side to the product side and the value of equilibrium constant will increases.

Exothermic reaction:

In an exothermic reaction, heat will be a product. Therefore, increasing the temperature will shift the reaction from product side to the reactant side and the value of equilibrium constant will decreases.

(a)

Expert Solution
Check Mark

Explanation of Solution

Given data:

ΔH1°=260kJ/molΔH2°=35.7kJ/mol

The reactions at primary stage and at the secondary stage are given below:

CH4(g)+H2O(g)CO(g)+3H2(g)ΔH1°=260kJ/molCH4(g)+12O2(g)CO(g)+2H2(g)ΔH2°=35.7kJ/mol

The reaction at primary stage has a temperature of 800°C and the reaction at secondary stage has a temperature of 1000°C

The both reactions are endothermic

If the reactions are endothermic, heat will be the reactant and high temperatures will favour the product side

Therefore, high temperature is maintained at steam-reforming process.

Examining the reactions, it can be seen that number of moles of products is greater than the number of moles of reactants. Therefore, the expectation is that the products will be favoured at low pressures.

The reality is that the reactions are carried out at high pressures. It is for the production of higher yields of ammonia by the hydrogen gas produced which requires a high pressure.

(b)

Interpretation Introduction

Interpretation:

The equilibrium constant Kp for the reaction and the pressure of all the gases at equilibrium has to be calculated.

Concept Introduction

  • Equilibrium constant at constant pressure:Kp

It is used to express the relationship between product pressures and reactant pressures.

For a general reaction, aA+bBcC+dD

EquilibriumconstantKp=PCcPDdPAaPBb

  • Kp=Kc(RT)ΔnΔn-changeinnumberofmolesR-GasconstantT-Temperature

(b)

Expert Solution
Check Mark

Explanation of Solution

Given data:

Kc=18PCH4=15atmPH2O=15atm

The reaction is given below:

Given data,

8000C+273K=1073K

Both products secondary stages

CH4(g)+H2O(g)CO(g)+3H2(g)

Equilibrium constant Kp can be calculated as shown below:

Kp=Kc(RT)ΔnKp=18(0.0821×1073)2=1.4×105

The Kp is calculated to be 1.4×105.

The pressure of all the gases at equilibrium has to be calculated.

The amount of CH4andH2O reacted can be taken as x.

The ICE table for the reaction is given below

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

CH4(g)+H2O(g)CO(g)+3H2Initial15150Changexx+x+3x _Equilibirium15x15xx3x

Substituting the values in the equilibrium constant equation,

KP=PCOP3H2PCH4PH2O1.4×105=x(3x)3(15-x)(15-x)=27x4(15-x)2

Taking the square root of both sides,

3.7×102=5.2x215-x5.2x2+(3.7×102x)-(5.6×103)=0

The value of x can be obtained by solving the quadratic equation

x=13atm

The pressure at equilibrium can be calculated as follows:

PCH4=15-x=15-13=2atmPH2O=15-x=15-13=2atmPCO=13atmPH2=3(13)atm=39atm

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Chapter 15 Solutions

General Chemistry

Ch. 15.4 - Practice Exercise At 430°C. the equilibrium...Ch. 15.4 - Prob. 2PECh. 15.4 - Prob. 1RCCh. 15.4 - Prob. 2RCCh. 15.4 - Prob. 3PECh. 15 - Prob. 15.1QPCh. 15 - 15.2 Explain the difference between physical...Ch. 15 - 15.3 Briefly describe the importance of...Ch. 15 - 15.4 Consider the equilibrium system 3A ⇌ B....Ch. 15 - 15.5 Define homogeneous equilibrium and...Ch. 15 - Prob. 15.6QPCh. 15 - 15.7 Write equilibrium constant expressions for...Ch. 15 - 15.8 Write the expressions for the equilibrium...Ch. 15 - 15.9 Write the equilibrium constant expressions...Ch. 15 - 15.10 Write the equation relating Kc and KP and...Ch. 15 - Prob. 15.11QPCh. 15 - Prob. 15.12QPCh. 15 - 15.13 The equilibrium constant (Kc) for the...Ch. 15 - Prob. 15.14QPCh. 15 - 15.15 What is the KP at 1273°C for the...Ch. 15 - 15.16 The equilibrium constant KP for the...Ch. 15 - Prob. 15.17QPCh. 15 - Prob. 15.18QPCh. 15 - Prob. 15.19QPCh. 15 - Prob. 15.20QPCh. 15 - Prob. 15.21QPCh. 15 - 15.22 Ammonium carbamate, NH4CO2NH2, decomposes...Ch. 15 - Prob. 15.23QPCh. 15 - 15.24 Pure phosgene gas (COCl2), 3.00 × 10−2...Ch. 15 - Prob. 15.25QPCh. 15 - 15.26 A 2.50-mol quantity of NOCl was initially...Ch. 15 - 15.27 Define reaction quotient. How does it...Ch. 15 - Prob. 15.28QPCh. 15 - Prob. 15.29QPCh. 15 - Prob. 15.30QPCh. 15 - Prob. 15.31QPCh. 15 - Prob. 15.32QPCh. 15 - Prob. 15.33QPCh. 15 - Prob. 15.34QPCh. 15 - Prob. 15.35QPCh. 15 - Prob. 15.36QPCh. 15 - Prob. 15.37QPCh. 15 - Prob. 15.38QPCh. 15 - Prob. 15.39QPCh. 15 - Prob. 15.40QPCh. 15 - Prob. 15.41QPCh. 15 - Prob. 15.42QPCh. 15 - Prob. 15.43QPCh. 15 - Prob. 15.44QPCh. 15 - Prob. 15.45QPCh. 15 - 15.46 What effect does an increase in pressure...Ch. 15 - Prob. 15.47QPCh. 15 - Prob. 15.48QPCh. 15 - 15.49 Consider the reaction Comment on the...Ch. 15 - Prob. 15.50QPCh. 15 - Prob. 15.51QPCh. 15 - Prob. 15.53QPCh. 15 - Prob. 15.54QPCh. 15 - Prob. 15.55QPCh. 15 - Prob. 15.56QPCh. 15 - Prob. 15.57QPCh. 15 - 15.58 Baking soda (sodium bicarbonate) undergoes...Ch. 15 - 15.59 Consider the following reaction at...Ch. 15 - Prob. 15.60QPCh. 15 - Prob. 15.61QPCh. 15 - Prob. 15.62QPCh. 15 - Prob. 15.64QPCh. 15 - Prob. 15.65QPCh. 15 - Prob. 15.66QPCh. 15 - Prob. 15.67QPCh. 15 - Prob. 15.68QPCh. 15 - Prob. 15.69QPCh. 15 - Prob. 15.70QPCh. 15 - Prob. 15.71QPCh. 15 - Prob. 15.72QPCh. 15 - Prob. 15.73QPCh. 15 - Prob. 15.74QPCh. 15 - Prob. 15.75QPCh. 15 - Prob. 15.76QPCh. 15 - Prob. 15.78QPCh. 15 - Prob. 15.79QPCh. 15 - Prob. 15.81QPCh. 15 - Prob. 15.82QPCh. 15 - Prob. 15.83QPCh. 15 - Prob. 15.84QPCh. 15 - Prob. 15.85QPCh. 15 - Prob. 15.86QPCh. 15 - Prob. 15.89QPCh. 15 - Prob. 15.90QPCh. 15 - Prob. 15.91QPCh. 15 - Prob. 15.92QPCh. 15 - Prob. 15.93QPCh. 15 - 15.94 Consider the decomposition of ammonium...Ch. 15 - Prob. 15.95QPCh. 15 - 15.96 In 1899 the German chemist Ludwig Mond...Ch. 15 - Prob. 15.98QPCh. 15 - Prob. 15.99QPCh. 15 - Prob. 15.100QPCh. 15 - Prob. 15.101QPCh. 15 - Prob. 15.102QPCh. 15 - Prob. 15.103SPCh. 15 - Prob. 15.104SPCh. 15 - Prob. 15.105SPCh. 15 - Prob. 15.106SPCh. 15 - Prob. 15.107SPCh. 15 - Prob. 15.110SPCh. 15 - Prob. 15.111SPCh. 15 - Prob. 15.112SP
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