EBK MECHANICS OF MATERIALS
EBK MECHANICS OF MATERIALS
7th Edition
ISBN: 8220100257063
Author: BEER
Publisher: YUZU
bartleby

Videos

Question
Book Icon
Chapter 11.5, Problem 46P

(a)

To determine

Find the maximum deflection of end C.

(a)

Expert Solution
Check Mark

Answer to Problem 46P

The maximum deflection of end C is Δm=1.656mm_.

Explanation of Solution

Given information:

The mass of the collar D is m=15kg.

The modulus of elasticity of the steel rod is E=200GPa.

The length of the rod AB is LAB=2m.

The length of the rod BC is LBC=1.5m.

The diameter of rod AB is dAB=40mm

The diameter of rod BC is dBC=30mm

Calculation:

Consider the acceleration due to gravity as g=9.81m/s2.

Calculate the weight of the collar (m) as shown below.

W=mg

Substitute 9.81m/s2 for g and 15kg for m.

W=15kg×9.81m/s2=147.15kgm/s2×1N1kgm/s2=147.15N

Calculate the cross sectional area A of the rod as shown below.

A=πd24 (1)

For rod AB.

Substitute 40mm for d in Equation (1).

AAB=π×4024=1,256.64mm2×(103m1mm)2=1.2566×103m2

For rod BC.

Substitute 30mm for d in Equation (1).

ABC=π×3024=706.86mm2×(103m1mm)2=0.7069×103m2

The rod BC has the minimum area Amin=0.7069×103m2.

Calculate the deflection (Δ) as shown below.

Δ=PLAE (2)

For rod AB.

Substitute Pm for P, 2m for L, 1.2566×103m2 for A, and 200GPa for E in Equation (2).

ΔAB=Pm(2m)1.2566×103m2×200GPa×109N/m21GPa=7.958×109Pm

For rod BC.

Substitute Pm for P, 1.5m for L, 0.7069×103m2 for A, and 200GPa for E in Equation (2).

ΔBC=Pm(1.5m)2×0.7069×103m2×200GPa×109N/m21GPa=10.61×109Pm

Calculate the maximum deflection (Δm) as shown below.

Δm=ΔAB+ΔBC

Substitute 7.958×109Pm2 for ΔAB and 10.61×109Pm for ΔBC.

Δm=7.958×109Pm2+10.61×109Pm=18.568×109Pm (3)

Pm=53.856×106Δm (4)

Sketch the Free Body Diagram of the rod after deformation as shown in Figure 1.

EBK MECHANICS OF MATERIALS, Chapter 11.5, Problem 46P

Refer to Figure 1.

Calculate the strain energy (Um) as shown below.

Um=12PmΔm

Substitute 53.856×106Δm for Pm.

Um=12×53.856×106Δm×Δm=26.928×106Δm2

Consider that the distance h=0.5m.

Calculate the maximum deflection (Δm) as shown below.

W(h+Δm)=Um

Substitute 147.15N for W, 0.5m for h , and 26.928×106Δm2 for Um.

147.15(0.5+Δm)=26.928×106Δm20.5+Δm=182.997×103Δm2182.997×103Δm2Δm0.5=0Δm=1.656×103m×1,000mm1m

Δm=1.656mm

Hence, the maximum deflection of end C is Δm=1.656mm_.

(b)

To determine

The equivalent static load.

(b)

Expert Solution
Check Mark

Answer to Problem 46P

The equivalent static load is Pm=89.186kN_.

Explanation of Solution

Given information:

The mass of the collar D is m=15kg.

The modulus of elasticity of the steel rod is E=200GPa.

The length of the rod AB is LAB=2m.

The length of the rod BC is LBC=1.5m.

The diameter of rod AB is dAB=40mm

The diameter of rod BC is dBC=30mm

Calculation:

Refer to part (a).

The maximum deflection of end C is Δm=1.656×103m.

Calculate the static load (Pm) as shown below.

Substitute 1.656×103m for Δm in Equation (4).

Pm=53.856×106×1.656×103=89.186×103N×1kN1,000N=89.186kN

Substitute 250MPa for σall and 0.7069×103m2 for Amin.

Pm=250MPa×106N/m21MPa×0.7069×103m2=176,725N×1kN1,000N=176.725kN

Therefore, the equivalent static load is Pm=89.186kN_.

(c)

To determine

The maximum stress occurs in the rod.

(c)

Expert Solution
Check Mark

Answer to Problem 46P

The maximum stress occurs in the rod is σm=126.2MPa_.

Explanation of Solution

Given information:

The mass of the collar D is m=15kg.

The modulus of elasticity of the steel rod is E=200GPa .

The length of the rod AB is LAB=2m.

The length of the rod BC is LBC=1.5m.

The diameter of rod AB is dAB=40mm

The diameter of rod BC is dBC=30mm

Calculation:

Refer to part (a).

The minimum area of the rod is Amin=0.7069×103m2.

Refer to part (b).

The equivalent static load is Pm=89.186kN.

Calculate the maximum stress (σm) as shown below.

σm=PmAmin

Substitute 89.186kN for Pm and 0.7069×103m2 for Amin.

σm=89.186kN×1,000N1kN0.7069×103m2=126.165×106N/m2×1MPa106N/m2=126.2MPa

Therefore, the maximum stress occurs in the rod is σm=126.2MPa_.

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
From mechanics of materials it is known that when a static load P is applied at the end B of a uniform metal rod fixed at end A, the length of the rod will increase by an amount δ=PL/AE, where L is the length of the undeformed rod, A is its cross- sectional area, and E is the modulus of elasticity of the metal. Knowing that  L = 450 mm and E = 200 GPa and that the diameter of the rod is 8 mm, and neglecting the mass of the rod, determine (a) the equivalent spring constant of the rod, (b ) the frequency of the vertical vibrations of a block of mass m = 8 kg attached to end B of the same rod.
From mechanics of materials it is known that for a cantilever beam of constant cross section a static load P applied at end B will cause a deflection δB = PL3/3EI, where L is the length of the beam, E is the modulus of elasticity, and I is the moment of inertia of the cross-sectional area of the beam. Knowing that L = 10 ft, E = 29 x 106 lb/in2, and I = 12.4 in4, determine (a) the equivalent spring constant of the beam, (b) the frequency of vibration of a 520-lb block attached to end B of the same beam.
1418. A weight is dropped from a position just above, but not touching, a spring. Show that the maximum deformation produced will be twice that if the same weight is gradually lowered upon the spring. Answer: 15.3 ft per sec

Chapter 11 Solutions

EBK MECHANICS OF MATERIALS

Ch. 11.3 - A 30-in. length of aluminum pipe of...Ch. 11.3 - A single 6-mm-diameter steel pin B is used to...Ch. 11.3 - Prob. 13PCh. 11.3 - Prob. 14PCh. 11.3 - The assembly ABC is made of a steel for which E =...Ch. 11.3 - Show by integration that the strain energy of the...Ch. 11.3 - Prob. 17PCh. 11.3 - Prob. 18PCh. 11.3 - Prob. 19PCh. 11.3 - 11.18 through 11.21 In the truss shown, all...Ch. 11.3 - Prob. 21PCh. 11.3 - Each member of the truss shown is made of aluminum...Ch. 11.3 - Each member of the truss shown is made of aluminum...Ch. 11.3 - 11.24 through 11.27 Taking into account only the...Ch. 11.3 - Prob. 25PCh. 11.3 - 11.24 through 11.27 Taking into account only the...Ch. 11.3 - 11.24 through 11.27 Taking into account only the...Ch. 11.3 - Prob. 28PCh. 11.3 - Prob. 29PCh. 11.3 - Prob. 30PCh. 11.3 - 11.30 and 11.31 Using E = 200 GPa, determine the...Ch. 11.3 - Assuming that the prismatic beam AB has a...Ch. 11.3 - Prob. 33PCh. 11.3 - The design specifications for the steel shaft AB...Ch. 11.3 - Show by integration that the strain energy in the...Ch. 11.3 - The state of stress shown occurs in a machine...Ch. 11.3 - Prob. 37PCh. 11.3 - The state of stress shown occurs in a machine...Ch. 11.3 - Prob. 39PCh. 11.3 - Prob. 40PCh. 11.3 - Prob. 41PCh. 11.5 - A 5-kg collar D moves along the uniform rod AB and...Ch. 11.5 - The 18-lb cylindrical block E has a horizontal...Ch. 11.5 - The cylindrical block E has a speed v0 =16 ft/s...Ch. 11.5 - Prob. 45PCh. 11.5 - Prob. 46PCh. 11.5 - The 48-kg collar G is released from rest in the...Ch. 11.5 - Prob. 48PCh. 11.5 - Prob. 49PCh. 11.5 - Prob. 50PCh. 11.5 - Prob. 51PCh. 11.5 - The 2-kg block D is dropped from the position...Ch. 11.5 - The 10-kg block D is dropped from a height h = 450...Ch. 11.5 - Prob. 54PCh. 11.5 - A 160-lb diver jumps from a height of 20 in. onto...Ch. 11.5 - Prob. 56PCh. 11.5 - A block of weight W is dropped from a height h...Ch. 11.5 - 11.58 and 11.59 Using the method of work and...Ch. 11.5 - 11.58 and 11.59 Using the method of work and...Ch. 11.5 - 11.60 and 11.61 Using the method of work and...Ch. 11.5 - 11.60 and 11.61 Using the method of work and...Ch. 11.5 - 11.62 and 11.63 Using the method of work and...Ch. 11.5 - 11.62 and 11.63 Using the method of work and...Ch. 11.5 - Using the method of work and energy, determine the...Ch. 11.5 - Using the method of work and energy, determine the...Ch. 11.5 - The 20-mm diameter steel rod BC is attached to the...Ch. 11.5 - Torques of the same magnitude T are applied to the...Ch. 11.5 - Prob. 68PCh. 11.5 - The 20-mm-diameter steel rod CD is welded to the...Ch. 11.5 - The thin-walled hollow cylindrical member AB has a...Ch. 11.5 - 11.71 and 11.72 Each member of the truss shown has...Ch. 11.5 - 11.71 and 11.72 Each member of the truss shown has...Ch. 11.5 - Each member of the truss shown is made of steel...Ch. 11.5 - Each member of the truss shown is made of steel....Ch. 11.5 - Each member of the truss shown is made of steel...Ch. 11.5 - The steel rod BC has a 24-mm diameter and the...Ch. 11.9 - 11.77 and 11.78 Using the information in Appendix...Ch. 11.9 - 11.77 and 11.78 Using the information in Appendix...Ch. 11.9 - 11.79 through 11.82 For the beam and loading...Ch. 11.9 - 11.79 through 11.82 For the beam and loading...Ch. 11.9 - 11.79 through 11.82 For the beam and loading...Ch. 11.9 - 11.79 through 11.82 For the beam and loading...Ch. 11.9 - 11.83 through 11.85 For the prismatic beam shown,...Ch. 11.9 - 11.83 through 11.85 For the prismatic beam shown,...Ch. 11.9 - 11.83 through 11.85 For the prismatic beam shown,...Ch. 11.9 - 11.86 through 11.88 For the prismatic beam shown,...Ch. 11.9 - 11.86 through 11.88 For the prismatic beam shown,...Ch. 11.9 - 11.86 through 11.88 For the prismatic beam shown,...Ch. 11.9 - For the prismatic beam shown, determine the slope...Ch. 11.9 - For the prismatic beam shown, determine the slope...Ch. 11.9 - For the beam and loading shown, determine the...Ch. 11.9 - For the beam and loading shown, determine the...Ch. 11.9 - 11.93 and 11.94 For the beam and loading shown,...Ch. 11.9 - 11.93 and 11.94 For the beam and loading shown,...Ch. 11.9 - For the beam and loading shown, determine the...Ch. 11.9 - For the beam and loading shown, determine the...Ch. 11.9 - Prob. 97PCh. 11.9 - For the beam and loading shown, determine the...Ch. 11.9 - 11.99 and 11.100 For the truss and loading shown,...Ch. 11.9 - 11.99 and 11.100 For the truss and loading shown,...Ch. 11.9 - 11.101 and 11.102 Each member of the truss shown...Ch. 11.9 - 11.101 and 11.102 Each member of the truss shown...Ch. 11.9 - 11.103 and 11.104 Each member of the truss shown...Ch. 11.9 - 11.103 and 11 104 Each member of the truss shown...Ch. 11.9 - A uniform rod of flexural rigidity EI is bent and...Ch. 11.9 - For the uniform rod and loading shown and using...Ch. 11.9 - For the beam and loading shown and using...Ch. 11.9 - Two rods AB and BC of the same flexural rigidity...Ch. 11.9 - Three rods, each of the same flexural rigidity EI,...Ch. 11.9 - Three rods, each of the same flexural rigidity EI,...Ch. 11.9 - 11.111 through 11.115 Determine the reaction at...Ch. 11.9 - 11.111 through 11.115 Determine the reaction at...Ch. 11.9 - 11.111 through 11.115 Determine the reaction at...Ch. 11.9 - 11.111 through 11.115 Determine the reaction at...Ch. 11.9 - 11.111 through 11.115 Determine the reaction at...Ch. 11.9 - For the uniform beam and loading shown, determine...Ch. 11.9 - 11.117 through 11.120 Three members of the same...Ch. 11.9 - 11.117 through 11.120 Three members of the same...Ch. 11.9 - 11.117 through 11.120 Three members of the same...Ch. 11.9 - 11.117 through 11.120 Three members of the same...Ch. 11.9 - 11.121 and 11.122 Knowing that the eight members...Ch. 11.9 - 11.121 and 11.122 Knowing that the eight members...Ch. 11 - Rod AB is made of a steel for which the yield...Ch. 11 - Each member of the truss shown is made of steel...Ch. 11 - The ship at A has just started to drill for oil on...Ch. 11 - Collar D is released from rest in the position...Ch. 11 - Each member of the truss shown is made of steel...Ch. 11 - A block of weight W is placed in contact with a...Ch. 11 - Two solid steel shafts are connected by the gears...Ch. 11 - A 160-lb diver jumps from a height of 20 in. onto...Ch. 11 - For the prismatic beam shown, determine the slope...Ch. 11 - A disk of radius a has been welded to end B of the...Ch. 11 - A uniform rod of flexural rigidity EI is bent and...Ch. 11 - The steel bar ABC has a square cross section of...
Knowledge Booster
Background pattern image
Mechanical Engineering
Learn more about
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, mechanical-engineering and related others by exploring similar questions and additional content below.
Similar questions
SEE MORE QUESTIONS
Recommended textbooks for you
Text book image
International Edition---engineering Mechanics: St...
Mechanical Engineering
ISBN:9781305501607
Author:Andrew Pytel And Jaan Kiusalaas
Publisher:CENGAGE L
Mechanical SPRING DESIGN Strategy and Restrictions in Under 15 Minutes!; Author: Less Boring Lectures;https://www.youtube.com/watch?v=dsWQrzfQt3s;License: Standard Youtube License