Physics
Physics
3rd Edition
ISBN: 9781259233616
Author: GIAMBATTISTA
Publisher: MCG
bartleby

Concept explainers

bartleby

Videos

Question
Book Icon
Chapter 15, Problem 11P

(a)

To determine

The temperature and pressure at point C.

(a)

Expert Solution
Check Mark

Answer to Problem 11P

The temperature and pressure at point C are 1180K and 98.0kPa respectively.

Explanation of Solution

Write the expression for temperature using Ideal gas equation.

T=PVnR

Here, T is the temperature, P is the pressure, V is the volume, n is the number of moles and R is the gas constant.

From the graph given in the question, the pressure at point C is 98.0 kPa.

Conclusion:

Substitute 98.0 kPa for P, 2.00 L for V, 0.0200 mol for n and 8.314Jmol1K1 for R to get T.

T=(98.0kPa)(2.00L)(0.0200mol)(8.314Jmol1K1)=(98.0kPa)(103Pa1kPa)(2.00L)(103m31L)(0.0200mol)(8.314Jmol1K1)1180K

Therefore, temperature and pressure at point C are 1180K and 98.0kPa respectively.

(b)

To determine

The change in internal energy of the gas between points A and B.

(b)

Expert Solution
Check Mark

Answer to Problem 11P

The change in internal energy of the gas between points A and B is 200J.

Explanation of Solution

Write the expression for change in internal energy.

ΔU=32nRΔT

Here, ΔU is the change in internal energy and ΔT is the change intemperature.

As the volume is constant, the ideal gas equation can be written as,

VΔP=nRΔT

Replace nRΔT by VΔP in the expression for ΔU.

ΔU=32VΔP=32V(PBPA)

Here, PA is the pressure at point A and PB is the pressure at point B.

Conclusion:

Substitute 98.0 kPa for PA, 1.00 L for V and 230 kPa for PB to get ΔU.

ΔU=32(1.00L)(98.0kPa230kPa)=32(1.00L)(103m31L)(98.0Pa230Pa)(103Pa1kPa)200J

Therefore, change in internal energy of the gas between points A and B is 200J.

(c)

To determine

The work done by the gas.

(c)

Expert Solution
Check Mark

Answer to Problem 11P

The work done by the gas is 66J.

Explanation of Solution

Work done by the gas is equal to the area under the curve. Therefore, work done is equal to the area of triangle ABC. Write the expression for area of triangle ABC.

W=12(AB)(BC)

The length AB is,

AB=230kPa98.0kPa=132kPa

The length BC is,

BC=2.00L1.00L=1.00L

Conclusion:

Substitute 132 kPa for AB and 1.00 L for BC to get W.

W=12(132kPa)(1.00L)=12(132kPa)(103Pa1kPa)(1.00L)(103m31L)=66J

Therefore, work done by the gas is 66J.

(d)

To determine

The total change in internal energy of the gas for one cycle.

(d)

Expert Solution
Check Mark

Answer to Problem 11P

The total change in internal energy of the gas for one cycle is 0J.

Explanation of Solution

Write the expression for change in internal energy.

ΔU=32nRΔT

Here, ΔU is the change in internal energy and ΔT is the change in temperature.

For one complete cycle, the intial and final temperatures are the same. Therefore, change in temperature is zero. As a result, total change in internal energy of the gas is zero.

Conclusion:

Therefore, total change in internal energy of the gas for one cycle is 0J.

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
suggest a reason ultrasound cleaning is better than cleaning by hand?
Checkpoint 4 The figure shows four orientations of an electric di- pole in an external electric field. Rank the orienta- tions according to (a) the magnitude of the torque on the dipole and (b) the potential energy of the di- pole, greatest first. (1) (2) E (4)
What is integrated science. What is fractional distillation What is simple distillation

Chapter 15 Solutions

Physics

Ch. 15.8 - Prob. 15.8CPCh. 15.8 - Prob. 15.9PPCh. 15 - Prob. 1CQCh. 15 - Prob. 2CQCh. 15 - Prob. 3CQCh. 15 - Prob. 4CQCh. 15 - Prob. 5CQCh. 15 - Prob. 6CQCh. 15 - Prob. 7CQCh. 15 - Prob. 8CQCh. 15 - Prob. 9CQCh. 15 - Prob. 10CQCh. 15 - 11. A warm pitcher of lemonade is put into an ice...Ch. 15 - Prob. 12CQCh. 15 - Prob. 13CQCh. 15 - Prob. 14CQCh. 15 - Prob. 1MCQCh. 15 - Prob. 2MCQCh. 15 - Prob. 3MCQCh. 15 - Prob. 4MCQCh. 15 - Prob. 5MCQCh. 15 - Prob. 6MCQCh. 15 - Prob. 7MCQCh. 15 - Prob. 8MCQCh. 15 - Prob. 9MCQCh. 15 - Prob. 10MCQCh. 15 - Prob. 11MCQCh. 15 - Prob. 12MCQCh. 15 - Prob. 13MCQCh. 15 - Prob. 1PCh. 15 - Prob. 2PCh. 15 - Prob. 3PCh. 15 - Prob. 4PCh. 15 - Prob. 5PCh. 15 - Prob. 6PCh. 15 - Prob. 7PCh. 15 - Prob. 8PCh. 15 - Prob. 9PCh. 15 - Prob. 10PCh. 15 - Prob. 11PCh. 15 - Prob. 12PCh. 15 - Prob. 13PCh. 15 - Prob. 14PCh. 15 - Prob. 15PCh. 15 - Prob. 16PCh. 15 - Prob. 17PCh. 15 - Prob. 18PCh. 15 - Prob. 19PCh. 15 - Prob. 20PCh. 15 - Prob. 21PCh. 15 - Prob. 22PCh. 15 - Prob. 23PCh. 15 - Prob. 24PCh. 15 - 25. What is the efficiency of an electric...Ch. 15 - Prob. 26PCh. 15 - Prob. 27PCh. 15 - Prob. 28PCh. 15 - Prob. 29PCh. 15 - Prob. 30PCh. 15 - Prob. 31PCh. 15 - Prob. 32PCh. 15 - Prob. 33PCh. 15 - Prob. 34PCh. 15 - Prob. 35PCh. 15 - Prob. 36PCh. 15 - Prob. 37PCh. 15 - Prob. 38PCh. 15 - Prob. 39PCh. 15 - Prob. 40PCh. 15 - Prob. 41PCh. 15 - Prob. 42PCh. 15 - Prob. 43PCh. 15 - Prob. 44PCh. 15 - Prob. 45PCh. 15 - Prob. 46PCh. 15 - Prob. 47PCh. 15 - Prob. 48PCh. 15 - Prob. 49PCh. 15 - Prob. 50PCh. 15 - Prob. 51PCh. 15 - Prob. 52PCh. 15 - Prob. 53PCh. 15 - Prob. 54PCh. 15 - Prob. 55PCh. 15 - Prob. 56PCh. 15 - Prob. 57PCh. 15 - Prob. 58PCh. 15 - Prob. 59PCh. 15 - Prob. 60PCh. 15 - Prob. 61PCh. 15 - Prob. 62PCh. 15 - Prob. 63PCh. 15 - Prob. 64PCh. 15 - Prob. 65PCh. 15 - Prob. 66PCh. 15 - Prob. 67PCh. 15 - Prob. 68PCh. 15 - Prob. 69PCh. 15 - Prob. 70PCh. 15 - Prob. 71PCh. 15 - Prob. 72PCh. 15 - Prob. 73PCh. 15 - Prob. 74PCh. 15 - Prob. 75PCh. 15 - Prob. 76PCh. 15 - Prob. 77PCh. 15 - Prob. 78PCh. 15 - Prob. 79PCh. 15 - Prob. 80PCh. 15 - Prob. 81PCh. 15 - Prob. 82PCh. 15 - Prob. 83PCh. 15 - Prob. 84PCh. 15 - Prob. 85PCh. 15 - Prob. 86PCh. 15 - Prob. 87PCh. 15 - Prob. 88PCh. 15 - Prob. 89PCh. 15 - Prob. 90PCh. 15 - Prob. 91PCh. 15 - Prob. 92PCh. 15 - Prob. 93PCh. 15 - Prob. 94PCh. 15 - Prob. 95PCh. 15 - Prob. 96PCh. 15 - Prob. 97PCh. 15 - Prob. 98PCh. 15 - Prob. 99PCh. 15 - Prob. 100P
Knowledge Booster
Background pattern image
Physics
Learn more about
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, physics and related others by exploring similar questions and additional content below.
Similar questions
SEE MORE QUESTIONS
Recommended textbooks for you
Text book image
College Physics
Physics
ISBN:9781305952300
Author:Raymond A. Serway, Chris Vuille
Publisher:Cengage Learning
Text book image
University Physics (14th Edition)
Physics
ISBN:9780133969290
Author:Hugh D. Young, Roger A. Freedman
Publisher:PEARSON
Text book image
Introduction To Quantum Mechanics
Physics
ISBN:9781107189638
Author:Griffiths, David J., Schroeter, Darrell F.
Publisher:Cambridge University Press
Text book image
Physics for Scientists and Engineers
Physics
ISBN:9781337553278
Author:Raymond A. Serway, John W. Jewett
Publisher:Cengage Learning
Text book image
Lecture- Tutorials for Introductory Astronomy
Physics
ISBN:9780321820464
Author:Edward E. Prather, Tim P. Slater, Jeff P. Adams, Gina Brissenden
Publisher:Addison-Wesley
Text book image
College Physics: A Strategic Approach (4th Editio...
Physics
ISBN:9780134609034
Author:Randall D. Knight (Professor Emeritus), Brian Jones, Stuart Field
Publisher:PEARSON
A Level Physics – Ideal Gas Equation; Author: Atomi;https://www.youtube.com/watch?v=k0EFrmah7h0;License: Standard YouTube License, CC-BY