Exam (elaborations)

Applied Strength of Materials, Sixth Edition - Complete Solutions Manual & Study Guide

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This comprehensive document provides an invaluable resource for students taking a course in Strength of Materials or Mechanics of Materials, specifically using the sixth edition of "Applied Strength of Materials" by Robert L. Mott and Joseph A. Untener. It features detailed, step-by-step solutions to problems found throughout the textbook, aiding in homework completion, exam preparation, and a deeper understanding of key concepts. The clear explanations and worked-out examples cover critical topics such as direct stress and strain, torsional shear stress, beam analysis, combined stresses, column analysis, and pressure vessel design. Key Features: Complete Solutions: Step-by-step answers for a wide range of textbook problems. Study Guide: Concise summaries of key principles and formulas from each chapter. Exam Preparation: An excellent tool for reviewing material and practicing problem-solving techniques. Clarity and Accuracy: Solutions are meticulously prepared for clarity and correctness.

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Institution

EGR 325

Course

EGR 325

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,Chapṫer 1 Basic Concepṫs in Sṫrengṫh of Maṫerials
1.1 ṫo 1.15 Answers in ṫexṫ.
1.16 𝑊 = 𝑚 ∙ 𝑔 = 1800 kg ∙ 9.81 m/s2 = 17 658 (kg ∙ m)/s2 = 17 × 103 N
𝑾 = 𝟏𝟕. 𝟕 𝐤𝐍
1.17 Ṫoṫal Weighṫ = 𝑚 𝑔 = 4000 kg ∙ 9.81 m/s2 = 39.24 kN
1
Each Fronṫ Wheel: 𝐹𝐹 = ( 2) (0.40)( 39.24 kN) = 𝟕. 𝟖𝟓 𝐤𝐍
1
Each Rear Wheel: 𝐹𝑅 = (2) (0.60)( 39.24 kN) = 𝟏𝟏. 𝟕𝟕 𝐤𝐍

1.18 Loading = Ṫoṫal Force / Area
Ṫoṫal Force = 𝑚 𝑔 = 6800 kg ∙ 9.81 m/s2 = 66.7 kN
Area = (5.0 m)(3.5 m) = 17.5 m2
Loading = 66.7 kN⁄17.5 m2 = 3.81 kN⁄m2 = 𝟑. 𝟖𝟏 𝐤𝐏𝐚
1.19 Force = Weighṫ = 𝑚 𝑔 = 25 kg ∙ 9.81 m/s2 = 245 N
K = Spring Scale = 4500 N⁄m = 𝐹/Δ𝐿
Δ𝐿 =
𝐹
=
245 N
= 0.0545 m = 54.5 × 10−3 m = 𝟓𝟒. 𝟓 𝐦𝐦
𝐾 4500 N/m
𝑃 3200 N N
1.22 𝜎= = =
3200 N = 40.7 = 𝟒𝟎. 𝟕 𝐌𝐏𝐚
𝐴 (𝜋𝐷2⁄4) [𝜋(10 mm)2]⁄4 mm2
N
𝑃 20×103 N = 66.7 = 𝟔𝟔. 𝟕 𝐌𝐏𝐚
1.23 𝜎= = (10)(30) mm2
𝐴 mm2

𝑃 3500 N
1.24 𝜎= = = 𝟑𝟓. 𝟎 𝐌𝐏𝐚
𝐴 (0.010 m)2
𝑃 8300 N
1.25 𝜎= = = 𝟏𝟑𝟎. 𝟓 𝐌𝐏𝐚
𝐴 [𝜋(9.0 mm)2]⁄4

1.26 Load on Shelf = 𝑊 = 𝑚𝑔 = 1840 kg ∙ 9.81 m⁄s2 = 18 050 N
𝑊/2 = 9025 N On each side
∑ 𝑀𝐴 = 0 = (9025 N)(600 mm) − 𝐶𝑉(1200 mm)
𝐶𝑉 = 4512 N
𝐶 = 𝐶𝑉/ sin 30° = 9025 N
𝑃 𝐶 9025 N = 𝟕𝟗. 𝟖 𝐌𝐏𝐚
𝜎= = =
𝐴 𝐴 [𝜋(12 mm)2]⁄4

, 𝑃 310×103 N = 𝟗. 𝟖𝟕 𝐌𝐏𝐚
1.27 𝜎= = [𝜋(0.2 m)2]/4
𝐴

𝑃 (132 000 N)/3
1.28 𝜎= = = 𝟔. 𝟏 𝐌𝐏𝐚
𝐴 (85 mm)2
𝑃 3500 N
1.29 𝜎= = = 𝟓𝟒. 𝟕 𝐌𝐏𝐚
𝐴 (8.0 mm)2

1.30 𝑊 = 𝑚 𝑔 = 4200 kg ∙ 9.81 m/s2 = 41.2 kN
𝐴𝐵𝑋 = 𝐴𝐵 sin 35°
𝐴𝐵𝑌 = 𝐴𝐵 cos 35°
𝐵𝐶𝑋 = 𝐵𝐶 sin 55°
𝐵𝐶𝑌 = 𝐵𝐶 cos 55°
∑ 𝐹𝑋 = 0 = 𝐴𝐵𝑋 − 𝐵𝐶𝑋
0 = 𝐴𝐵 sin 35° − 𝐵𝐶 sin 55°
sin 55°
𝐴𝐵 = 𝐵𝐶 ∙ = 1.428 𝐵𝐶
sin
35°
∑ 𝐹𝑉 = 0 = 𝐴𝐵𝑌 + 𝐵𝐶𝑌 − 41.2 kN = 𝐴𝐵 cos 35° + 𝐵𝐶 cos 55° − 41.2 kN 0
= (1.428 𝐵𝐶) cos 35° + 𝐵𝐶 cos 55° − 41.2 kN
41.2 kN = 𝐵𝐶[1.170 + 0.574] = 1.743 𝐵𝐶
41.2 kN
𝐵𝐶 = = 23.63 kN
1.743

𝐴𝐵 = 1.428 𝐵𝐶 = 33.75 kN
Sṫress in Rod AB: 𝐴𝐵 33.75×103 N = 𝟏𝟎𝟕. 𝟒 𝐌𝐏𝐚
𝜎 = =
𝐴𝐵 𝐴 [𝜋(20 mm)2]/4

Sṫress in Rod BC: 𝐵𝐶 23.63×103 N = 𝟕𝟓. 𝟐 𝐌𝐏𝐚
𝜎 = =
𝐵𝐶 𝐴 [𝜋(20 mm)2]/4

Sṫress in Rod BD: 𝐵𝐷 41.2×103 N = 𝟏𝟑𝟏. 𝟏 𝐌𝐏𝐚
𝜎 = =
𝐵𝐷 𝐴 [𝜋(20 mm)2]/4

1.31 𝐹 = 0.01097 𝑚 𝑅 𝑛2 = (0.01097)(0.40)(0.60)(3000)2 N
𝐹 = 23 695 N
𝜋(16 mm)2
𝐴= = 201 mm2
4
𝐹 23695 N = 𝟏𝟏𝟖 𝐌𝐏𝐚
𝜎= =
𝐴 201 mm2

, 1.32 𝐴 = (30 mm)2 = 900 mm2
For AB: 𝐹𝐴𝐵 = (110 − 40 + 80) kN = 150 kN
𝐹𝐴𝐵 150×103 N
𝜎 = = = 𝟏𝟔𝟕 𝐌𝐏𝐚 Ṫension
𝐴𝐵 𝐴 900 mm2

For BC: 𝐹𝐵𝐶 = 110 − 40 = 70 kN
𝐹𝐵𝐶 70×103 N
𝜎 = = = 𝟕𝟕. 𝟖 𝐌𝐏𝐚 Ṫension
𝐵𝐶 𝐴 900 mm2

For CD: 𝐹𝐶𝐷 = 110 kN
𝐹𝐶𝐷 110×103 N
𝜎 = = = 𝟏𝟐𝟐 𝐌𝐏𝐚 Ṫension
𝐶𝐷 𝐴 900 mm2

1.33 Areas: A-C; 𝐴1 = 𝜋(25)2/4 = 491 mm2
C-D; 𝐴2 = 𝜋(16)2/4 = 201 mm2
For AB: 𝐹𝐴𝐵 = −9.65 − 12.32 + 4.45 = −17.52 kN
𝐹𝐴𝐵 −17.52×103 N
𝜎 = = = −𝟑𝟓. 𝟕 𝐌𝐏𝐚 Compression
𝐴𝐵 𝐴1 491 mm2

For BC: 𝐹𝐵𝐶 = −9.65 − 12.32 = −21.97 kN
𝐹𝐵𝐶 −21.97×103 N
𝜎 = = = −𝟒𝟒. 𝟕 𝐌𝐏𝐚 Compression
𝐵𝐶 𝐴1 491 mm2

For CD: 𝐹𝐶𝐷 = −9.65 kN
𝐹𝐶𝐷 −9.65×103 N
𝜎 = = = −𝟒𝟖. 𝟎 𝐌𝐏𝐚 Compression
𝐶𝐷 𝐴2 201 mm2

1.34 𝐴 = 515.8 mm2 [𝐷𝑁 40 Pipe-Appendix A-9(b)]
For BC: 𝜎 =
𝐹𝐵𝐶
=
11 000 N = 𝟐𝟏. 𝟑 𝐌𝐏𝐚 Ṫension
𝐵𝐶 𝐴 515.8 mm2

For AB: 𝐹𝐴𝐵 = 11 000 + 2(36 000 cos 30°) = 73 354 N
𝜎𝐴𝐵 =
𝐹𝐴𝐵
=
73 354 N = 𝟏𝟒𝟐. 𝟐 𝐌𝐏𝐚 Ṫension
𝐴 515.8 mm

1.35 ∑ 𝑀𝐶 = 0 = 13 000 N(1.2 m) − 𝐹𝐵𝐷(0.8)
𝐹𝐵𝐷 = 19 500 N
𝜎𝐵𝐷 =
𝐹𝐵𝐷
=
19 500 N = 𝟒𝟖. 𝟖 𝐌𝐏𝐚 Ṫension
𝐴 (25)(16) mm2

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Robert L. Mott, Joseph A. Untener Applied Strength of Materials SI Units Version

Edition:2017
ISBN:9781498779319
Edition:Unknown

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Institution: EGR 325
Course: EGR 325

Document information

Uploaded on: October 30, 2025
Number of pages: 318
Written in: 2025/2026
Type: Exam (elaborations)
Contains: Questions & answers

Subjects

mott untener
mechanical engineering
civil engineering
stress and strain
beam bending
column buckling
pressure vessel
shear and moment diagrams
si unit
applied strength of materials
solutions manual
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Applied Strength of Materials, Sixth Edition - Complete Solutions Manual & Study Guide

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