Foundations of Materials Science and Engineering
Foundations of Materials Science and Engineering
6th Edition
ISBN: 9781259696558
Author: SMITH
Publisher: MCG
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Chapter 6.13, Problem 61AAP

a)

To determine

The total percent of cold work has to be determined.

a)

Expert Solution
Check Mark

Answer to Problem 61AAP

The total percent of cold work is 39 %.

Explanation of Solution

Write the expression for the initial cross sectional area of the wire.

  A0=π4d02                                                                                                 (I)

Here, initial diameter of the wire is d0.

Write the expression for the final cross sectional area of the wire.

  Af=π4df2                                                                                               (II)

Here, final diameter of the wire is df.

Write the expression for the percentage of cold reduction:

  %CR=|A0AfA0|×100%                                                                           (III)

Here, initial thickness of the sheet is t0 and final thickness is tf.

Conclusion:

Substitute equation (I) and (II) in equation (III)

%CR=|π4d02π4df2π4d02|×100%

%CR=|d02df2d02|×100% . (IV)

Substitute 20% for %CR, 2.80 mm for df in equation (IV).

 20%=|d02(2.80 mm)2d02|×100%0.2=|d02(2.80)2d02|0.2d02=d027.84d020.2d02=7.840.8d02=7.84d0=3.13mm

Substitute 3.13 mm for di and 2.45 mm for df in equation (III).

%CR=|(3.13 mm)2(2.45 mm)2(3.13 mm)2|×100%=9.7976.0039.797×100%=38.76%39%

Thus, the total percent of cold work that wire undergoes is 39%.

b)

To determine

Tensile strength, yield strength, and elongation have to be estimated.

b)

Expert Solution
Check Mark

Answer to Problem 61AAP

Ultimate tensile strength 38 ksi

Yield strength 33 ksi.

Elongation 8%

Explanation of Solution

Refer the figure 6.44, to obtain a tensile strength, yield strength, and elongation for 40 percent of cold work as given as follows:

Ultimate tensile strength 38 ksi

Yield strength 33 ksi.

Elongation 8%

Thus, the Ultimate tensile strength, Yield strength, and Elongation of the alloys is 38 ksi, 33 ksi, 8% respectively.

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Chapter 6 Solutions

Foundations of Materials Science and Engineering

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