Introduction To Chemistry 5th Edition
Introduction To Chemistry 5th Edition
5th Edition
ISBN: 9781260162097
Author: BAUER
Publisher: MCG
bartleby

Concept explainers

bartleby

Videos

Textbook Question
Book Icon
Chapter 10, Problem 40QP

Calculated the heat released when 84.6 g of gaseous ethanol at 90.0 ° C is converted to liquid ethanol at  54.2 ° C . The boiling point of ethanol is 78.4 ° C . (See Question 10.39 for heat constant that may be useful in answering this question).

Expert Solution & Answer
Check Mark
Interpretation Introduction

Interpretation:

The heat required for the conversion of 84.6g gaseous ethanol at 90°C to liquid ethanol at 54.2°C is to be determined.

Concept Introduction:

Molar heat of evaporation is the heat required for a mole of liquid to convert it into gas without changing the temperature.

Specific heat of a substance is the heat required for the substance to increase the temperature of 1.0g of a substance by 1.0°C .

Answer to Problem 40QP

Solution:

The heat required for the conversion of 84.6g gaseous ethanol at 90°C to liquid alcohol at 54.2°C is 77.4kJ .

Explanation of Solution

The heat required is calculated by a three-step process. The first step involves the cooling of gaseous ethanol from 90°C till its boiling point 78.4°C , after which all of the ethanol will be converted into liquid form, which requires heat of evaporation. The final step involves the cooling the liquid ethanol till 54.2°C .

The heat change associated with the given process is given by the expression as shown below.

q=mcΔT …… (1)

Here, q is heat in joules, m is the mass of the substance, c is the specific heat of the substance, and ΔT is the temperature change.

Now, heat released in the cool of gaseous ethanol is calculated by considering the temperature change from 90°C to 78.4°C in equation (1).

So, the temperature change is calculated as shown below.

ΔT=T2T1=78.4°C90°C=11.6°C

So, theheat released is calculated as,

q=84.6g ×1.42J/(g °C )×11.6°C =1.393×103J

So, the number moles of ethanol in 84.6g is calculated as shown below.

n=84.6gethanol×1 molethanol46.07gethanol=1.84mol

Now, the heat of vaporization for ethanol is 3.86×104J/mol , which can be used to calculate the heat required to condense all the gaseous ethanol.

qcondensation=1.84mol×3.86×104J/mol=7.10×104J

Now, the heat released in the cool of liquid ethanol is calculated by considering the temperature change from 78.4°C to 54.2°C in equation (1).

The temperature change is calculated as shown below.

ΔT=T2T1=54.2°C78.4°C=24.2°C

So, the heat released is calculated as shown below.

q=84.6g ×2.44J/(g °C )×24.2°C =5.00×103J

Total heat released is the sum of the above three steps.

q=1.393×103J+7.10×104J+5.00×103J=7.74×104J=77.4kJ

Conclusion

The total heat change associated with the given process is 77.4kJ .

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!
Students have asked these similar questions
Indicate the correct option.a) Graphite conducts electricity, being an isotropic materialb) Graphite is not a conductor of electricityc) Both are false
(f) SO: Best Lewis Structure 3 e group geometry:_ shape/molecular geometry:, (g) CF2CF2 Best Lewis Structure polarity: e group arrangement:_ shape/molecular geometry: (h) (NH4)2SO4 Best Lewis Structure polarity: e group arrangement: shape/molecular geometry: polarity: Sketch (with angles): Sketch (with angles): Sketch (with angles):
1. Problem Set 3b Chem 141 For each of the following compounds draw the BEST Lewis Structure then sketch the molecule (showing bond angles). Identify (i) electron group geometry (ii) shape around EACH central atom (iii) whether the molecule is polar or non-polar (iv) (a) SeF4 Best Lewis Structure e group arrangement:_ shape/molecular geometry: polarity: (b) AsOBr3 Best Lewis Structure e group arrangement:_ shape/molecular geometry: polarity: Sketch (with angles): Sketch (with angles):

Chapter 10 Solutions

Introduction To Chemistry 5th Edition

Ch. 10 - Prob. 7PPCh. 10 - Prob. 8PPCh. 10 - Prob. 9PPCh. 10 - Prob. 10PPCh. 10 - Prob. 11PPCh. 10 - Prob. 12PPCh. 10 - Prob. 13PPCh. 10 - Prob. 14PPCh. 10 - Prob. 15PPCh. 10 - Prob. 1QPCh. 10 - Match the key terms with the description provided....Ch. 10 - Prob. 3QPCh. 10 - Prob. 4QPCh. 10 - Prob. 5QPCh. 10 - Prob. 6QPCh. 10 - Prob. 7QPCh. 10 - Prob. 8QPCh. 10 - Prob. 9QPCh. 10 - Prob. 10QPCh. 10 - Prob. 11QPCh. 10 - Prob. 12QPCh. 10 - Prob. 13QPCh. 10 - Prob. 14QPCh. 10 - Prob. 15QPCh. 10 - Prob. 16QPCh. 10 - Prob. 17QPCh. 10 - Prob. 18QPCh. 10 - Prob. 19QPCh. 10 - Prob. 20QPCh. 10 - Prob. 21QPCh. 10 - Prob. 22QPCh. 10 - Prob. 23QPCh. 10 - Prob. 24QPCh. 10 - Prob. 25QPCh. 10 - Prob. 26QPCh. 10 - Prob. 27QPCh. 10 - Prob. 28QPCh. 10 - Prob. 29QPCh. 10 - Prob. 30QPCh. 10 - Prob. 31QPCh. 10 - Prob. 32QPCh. 10 - Prob. 33QPCh. 10 - Prob. 34QPCh. 10 - Calculate the amount of heat required when 15.0 g...Ch. 10 - What is the amount of heat required to convert 105...Ch. 10 - Calculate the heat absorbed when 542 g of ice at...Ch. 10 - Prob. 38QPCh. 10 - Prob. 39QPCh. 10 - Calculated the heat released when 84.6 g of...Ch. 10 - Prob. 41QPCh. 10 - Prob. 42QPCh. 10 - Prob. 43QPCh. 10 - Prob. 44QPCh. 10 - Prob. 45QPCh. 10 - Prob. 46QPCh. 10 - Prob. 47QPCh. 10 - Prob. 48QPCh. 10 - Prob. 49QPCh. 10 - Prob. 50QPCh. 10 - Prob. 51QPCh. 10 - Prob. 52QPCh. 10 - Prob. 53QPCh. 10 - Prob. 54QPCh. 10 - Prob. 55QPCh. 10 - Prob. 56QPCh. 10 - Prob. 57QPCh. 10 - Prob. 58QPCh. 10 - Prob. 59QPCh. 10 - Prob. 60QPCh. 10 - Prob. 61QPCh. 10 - Prob. 62QPCh. 10 - Prob. 63QPCh. 10 - Prob. 64QPCh. 10 - Prob. 65QPCh. 10 - Prob. 66QPCh. 10 - Prob. 67QPCh. 10 - Prob. 68QPCh. 10 - Prob. 69QPCh. 10 - Prob. 70QPCh. 10 - Prob. 71QPCh. 10 - Prob. 72QPCh. 10 - Prob. 73QPCh. 10 - Prob. 74QPCh. 10 - Prob. 75QPCh. 10 - Prob. 76QPCh. 10 - Prob. 77QPCh. 10 - Prob. 78QPCh. 10 - Prob. 79QPCh. 10 - Prob. 80QPCh. 10 - Prob. 81QPCh. 10 - Prob. 82QPCh. 10 - Prob. 83QPCh. 10 - Prob. 84QPCh. 10 - Prob. 85QPCh. 10 - Prob. 86QPCh. 10 - Prob. 87QPCh. 10 - Prob. 88QPCh. 10 - Prob. 89QPCh. 10 - Prob. 90QPCh. 10 - Prob. 91QPCh. 10 - Prob. 92QPCh. 10 - Prob. 93QPCh. 10 - Prob. 94QPCh. 10 - Prob. 95QPCh. 10 - Prob. 96QPCh. 10 - Prob. 97QPCh. 10 - Prob. 98QPCh. 10 - Prob. 99QPCh. 10 - Prob. 100QPCh. 10 - Prob. 101QPCh. 10 - Prob. 102QPCh. 10 - Prob. 103QPCh. 10 - Prob. 104QPCh. 10 - Prob. 105QPCh. 10 - Prob. 106QPCh. 10 - Prob. 107QPCh. 10 - Prob. 108QPCh. 10 - Prob. 109QPCh. 10 - Prob. 110QPCh. 10 - Prob. 111QPCh. 10 - Prob. 112QPCh. 10 - Prob. 113QPCh. 10 - Prob. 114QPCh. 10 - Prob. 115QPCh. 10 - Prob. 116QPCh. 10 - Prob. 117QPCh. 10 - Prob. 118QPCh. 10 - Prob. 119QPCh. 10 - Prob. 120QPCh. 10 - Prob. 121QPCh. 10 - Prob. 122QPCh. 10 - Prob. 123QPCh. 10 - Prob. 124QPCh. 10 - Prob. 125QPCh. 10 - Prob. 126QPCh. 10 - Prob. 127QPCh. 10 - Prob. 128QPCh. 10 - Prob. 129QPCh. 10 - Prob. 130QPCh. 10 - Prob. 131QPCh. 10 - Prob. 132QPCh. 10 - Prob. 133QPCh. 10 - Prob. 134QPCh. 10 - Prob. 135QPCh. 10 - Prob. 136QPCh. 10 - Prob. 137QPCh. 10 - Prob. 138QPCh. 10 - Prob. 139QPCh. 10 - Prob. 140QPCh. 10 - Prob. 141QPCh. 10 - Prob. 142QPCh. 10 - Prob. 143QPCh. 10 - Prob. 144QPCh. 10 - Prob. 145QPCh. 10 - Prob. 146QPCh. 10 - Prob. 147QPCh. 10 - Prob. 148QPCh. 10 - Prob. 149QPCh. 10 - Prob. 150QPCh. 10 - Prob. 151QPCh. 10 - Prob. 152QPCh. 10 - Prob. 153QPCh. 10 - Prob. 154QP
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.
Recommended textbooks for you
Text book image
Living By Chemistry: First Edition Textbook
Chemistry
ISBN:9781559539418
Author:Angelica Stacy
Publisher:MAC HIGHER
Text book image
Chemistry: The Molecular Science
Chemistry
ISBN:9781285199047
Author:John W. Moore, Conrad L. Stanitski
Publisher:Cengage Learning
Text book image
Chemistry by OpenStax (2015-05-04)
Chemistry
ISBN:9781938168390
Author:Klaus Theopold, Richard H Langley, Paul Flowers, William R. Robinson, Mark Blaser
Publisher:OpenStax
Text book image
Chemistry In Focus
Chemistry
ISBN:9781337399692
Author:Tro, Nivaldo J.
Publisher:Cengage Learning,
Text book image
Introductory Chemistry: A Foundation
Chemistry
ISBN:9781337399425
Author:Steven S. Zumdahl, Donald J. DeCoste
Publisher:Cengage Learning
Text book image
Chemistry: Principles and Practice
Chemistry
ISBN:9780534420123
Author:Daniel L. Reger, Scott R. Goode, David W. Ball, Edward Mercer
Publisher:Cengage Learning
Calorimetry Concept, Examples and Thermochemistry | How to Pass Chemistry; Author: Melissa Maribel;https://www.youtube.com/watch?v=nSh29lUGj00;License: Standard YouTube License, CC-BY