Essentials Of Materials Science And Engineering
Essentials Of Materials Science And Engineering
4th Edition
ISBN: 9781337385497
Author: WRIGHT, Wendelin J.
Publisher: Cengage,
Question
Book Icon
Chapter 14, Problem 14.15P
Interpretation Introduction

(a)

Interpretation:

The maximum force applied on an aluminum rod needs to be determined.

Concept Introduction:

Expression for stress (S) is given as follows:

  S=FA

Here, Force is F, the cross-sectional area is A.

The expression for Young's Modulus (E) is as follows:

  E=Se

Here, e is the strain.

Length of the rod (L) is expressed as follows:

  L=L+δmax

Strain in the rod is expressed as (e):

  e=Lll.

Expert Solution
Check Mark

Answer to Problem 14.15P

The maximum force applied is 271 N.

Explanation of Solution

  L=L+δmax

Here,

  δmax=2 mm

l =10 mm

L= 10 + 0.002

L= 10.002 m

Strain,

  e=10.0021010

e = 0.0002 m

To calculate the area of the rod,

  A=π4d2 A= π 4 (0.5) 2 A=0.1963×104m2

Selecting the value of Young's modulus as 69×109 N/m2 from the table of physical properties of common alloys,

Substitute 69×109 N/m2for E, 0.1963 ×10-4 m2 for A and 0.0002 for e in below equations,

  F=EAeF=(69×109)(0.1963×104)(0.0002)

  F=271 N

The maximum force applied is 271 N.

Interpretation Introduction

(b)

Interpretation:

The maximum force applications on magnesium rod needs to be determined.

Concept Introduction:

Expression for stress (S) is given as follows:

  S=FA

Here, Force is F, the cross-sectional area is A.

The expression for Young's Modulus (E) is as follows:

  E=Se

Here, e is the strain.

Length of the rod (L) is expressed as follows:

  L=L+δmax

Strain in the rod is expressed as (e):

  e=Lll

Expert Solution
Check Mark

Answer to Problem 14.15P

The maximum force applied is 176 N.

Explanation of Solution

  L=L+δmax

Here,

  δmax=2mm

l =10 mm

L= 10 + 0.002

L= 10.002 m

Strain,

  e=10.0021010

e = 0.0002 m

To calculate the area of the rod,

  A=π4d2 A= π 4 (0.5) 2 A=0.1963×104m2

Selecting the value of Young's modulus as 45×106N/m 2.

Substituting the required values in the below equation,

  F=EAeF=(45×109)(0.1963×104)(0.0002)

  F=176 N

The maximum force applied in the bar is 176 N.

Interpretation Introduction

(c)

Interpretation:

The maximum force applied on beryllium rod needs to be determined.

Concept Introduction:

Expression for stress (S) is given as follows:

  S=FA

Here Force is F, the cross-sectional area is A.

The expression for Young's Modulus (E) is

  E=Se

Where e is the Strain.

Length of the rod (L) is expressed as:

  L=L+δmax

Strain in the rod is expressed as (e):

  e=Lll

Expert Solution
Check Mark

Answer to Problem 14.15P

The maximum force applied on beryllium is 1138 N.

Explanation of Solution

  L=L+δmax

Here,

  δmax=2mm

l =10 mm

L= 10 + 0.002

L= 10.002 m

Strain,

  e=10.0021010

e = 0.0002 m

To calculate the area of the rod:

  A=π4d2 A= π 4 (0.5) 2 A=0.1963×104m2

From the table of common metals, select the Young's modulus of beryllium as 287×109 N/m2

Substitute the required values in the below equation,

  F=EAeF=(287×109)(0.1963×104)(0.0002)

  F=1138 N

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
Please original work Why is integration between data collection and business analysis so important to success in an organization that uses business analytics? How can a company that is just starting to use business analytics set up its program for success right from the beginning? Please cite in text references and add weblinks
How to make a 1 bit adder with CLA?
(Read Image) (Answer: ω = 1.10 rad/sec CW)
Knowledge Booster
Background pattern image
Similar questions
SEE MORE QUESTIONS
Recommended textbooks for you
Text book image
MATLAB: An Introduction with Applications
Engineering
ISBN:9781119256830
Author:Amos Gilat
Publisher:John Wiley & Sons Inc
Text book image
Essentials Of Materials Science And Engineering
Engineering
ISBN:9781337385497
Author:WRIGHT, Wendelin J.
Publisher:Cengage,
Text book image
Industrial Motor Control
Engineering
ISBN:9781133691808
Author:Stephen Herman
Publisher:Cengage Learning
Text book image
Basics Of Engineering Economy
Engineering
ISBN:9780073376356
Author:Leland Blank, Anthony Tarquin
Publisher:MCGRAW-HILL HIGHER EDUCATION
Text book image
Structural Steel Design (6th Edition)
Engineering
ISBN:9780134589657
Author:Jack C. McCormac, Stephen F. Csernak
Publisher:PEARSON
Text book image
Fundamentals of Materials Science and Engineering...
Engineering
ISBN:9781119175483
Author:William D. Callister Jr., David G. Rethwisch
Publisher:WILEY