Vector Mechanics for Engineers: Statics and Dynamics
Vector Mechanics for Engineers: Statics and Dynamics
12th Edition
ISBN: 9781259638091
Author: Ferdinand P. Beer, E. Russell Johnston Jr., David Mazurek, Phillip J. Cornwell, Brian Self
Publisher: McGraw-Hill Education
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Chapter 15.2, Problem 15.57P

Knowing that the disk has a constant angular velocity of 15 rad/s clockwise, determine the angular velocity of bar BD and the velocity of collar D when (a) θ = 0, (b) θ = 90°, (c) θ = 180°.

Chapter 15.2, Problem 15.57P, Knowing that the disk has a constant angular velocity of 15 rad/s clockwise, determine the angular

Fig. P15.57 and P15.58

(a)

Expert Solution
Check Mark
To determine

Find the angular velocity of the bar BD and velocity of the collar D when θ=0°.

Answer to Problem 15.57P

The the angular velocity of the bar BD and velocity of the collar D when θ=0° are 4.38rad/s(Clockwise)_ and 12.25in./s()_.

Explanation of Solution

Given information:

The constant angular velocity of the disk is ωA=15rad/s(Clockwise).

The distance AB is 2.8in.

Calculation:

Show the disk as shown in Figure 1.

Vector Mechanics for Engineers: Statics and Dynamics, Chapter 15.2, Problem 15.57P , additional homework tip  1

Refer to Figure 1.

Calculate the velocity at B using the relation:

vB=(AB)ωA

Substitute 2.8in. for AB and 15rad/s for ωA.

vB=2.8×15=42in./s

Consider that θ=0°.

Show the velocity vB as follows:

vB=42in./s()

Calculate the value of angle β using the relation:

sinβ=2.810β=sin1(2.810)β=16.260°

Consider bar BD.

Show the velocity diagram as shown in Figure 2.

Vector Mechanics for Engineers: Statics and Dynamics, Chapter 15.2, Problem 15.57P , additional homework tip  2

Refer to Figure 2.

Show the relation between the velocity vD and vB as follows:

vD=vB+vD/B

Calculate the velocity of point D with respect to B using the relation:

vD/Bcosβ=42vD/B=42cosβ

Substitute 16.260° for β.

vD/Bcosβ=42vD/B=42cos(16.260°)vD/B=43.75in./s

Calculate the angular velocity of bar BD using the relation:

vD/B=ωD/B(DB)ωD/B=vD/BDB

Substitute 43.75in./s for vD/B and 10in. for DB.

ωD/B=43.7510=4.375rad/s4.38rad/s

Thus, the angular velocity of bar BD is 4.38rad/s_.

Calculate the velocity of the collar (vD) using the relation:

vD=vBtanβ

Substitute 16.260° for β and 42in./s for vB.

vD=42tan(16.260°)=12.25in./s()

Thus, the velocity of the collar D is 12.25in./s()_.

(b)

Expert Solution
Check Mark
To determine

Find the angular velocity of the bar BD and velocity of the collar D when θ=90°.

Answer to Problem 15.57P

The angular velocity of the bar BD and velocity of the collar D are 42in/s()_ and 0rad/s_.

Explanation of Solution

Calculation:

Refer to Part (a).

Show the disk as shown in Figure 3.

Vector Mechanics for Engineers: Statics and Dynamics, Chapter 15.2, Problem 15.57P , additional homework tip  3

Refer Figure 3.

Calculate the velocity at B using the relation:

vB=(AB)ωA

Substitute 2.8in. for AB and 15rad/s for ωA.

vB=2.8×15=42in./s

Consider θ=90°.

Show the velocity vB as follows:

vB=42in./s()

Calculate the value of angle β using the relation:

sinβ=5.610β=sin1(5.610)β=34.06°

Consider bar BD.

Show the relation between the velocity vD and vB as follows:

vD=vB+vD/BvD()=42()+vD/B(Acting at β Clockwise above the horizontal) (1)

Equate the horizontal component of Equation (1).

0=0+vD/Bcos(β)()vD/B=0

Equate the vertical component of Equation (1).

vD=42vD/Bsinβ

Substitute 0 for vD/B.

vD=42in/s()

Thus, the velocity of the collar is 42in/s()_.

Calculate the angular velocity of bar BD using the relation:

vD/B=ωD/B(DB)

Substitute 0 for vD/B.

ωD/B=0rad/s

Thus, the angular velocity of bar BD is 0rad/s_.

(c)

Expert Solution
Check Mark
To determine

Find the angular velocity of the bar BD and velocity of the collar D when θ=180°.

Answer to Problem 15.57P

The angular velocity of the bar BD and velocity of the collar D when θ=180° are 4.38rad/s(Counterclockwise)_ and 12.25in./s()_.

Explanation of Solution

Given information:

The constant angular velocity of the disk is ωA=15rad/s(Clockwise).

The distance AB is 2.8in.

Calculation:

Show the disk as shown in Figure 4.

Vector Mechanics for Engineers: Statics and Dynamics, Chapter 15.2, Problem 15.57P , additional homework tip  4

Refer Figure 4.

Calculate the velocity at B using the relation:

vB=(AB)ωA

Substitute 2.8in. for AB and 15rad/s for ωA.

vB=2.8×15=42in./s

Consider θ=180°.

Show the velocity vB as follows:

vB=42in./s()

Calculate the value of angle β using the relation:

sinβ=2.810β=sin1(2.810)β=16.260°

Consider bar BD.

Show the velocity diagram as shown in Figure 5.

Vector Mechanics for Engineers: Statics and Dynamics, Chapter 15.2, Problem 15.57P , additional homework tip  5

Refer Figure 5.

Show the relation between the velocity vD and vB as follows:

vD=vB+vD/B

Calculate the velocity of point D with respect to B using the relation:

vD/Bcosβ=vBvD/B=42cosβ

Substitute 16.260° for β.

vD/Bcosβ=42vD/B=42cos(16.260°)vD/B=43.75in./s

Calculate the angular velocity of bar BD using the relation:

vD/B=ωD/B(DB)ωD/B=vD/BDB

Substitute 43.75in./s for vD/B and 10in. for DB.

ωD/B=43.7510=4.375rad/s4.38rad/s(Counterclockwise)

Thus, the angular velocity of bar BD is 4.38rad/s(Counterclockwise)_.

Calculate the velocity of the collar (vD) using the relation:

vD=vBtanβ

Substitute 16.260° for β and 42in./s for vB.

vD=42tan(16.260°)=12.25in./s()

Thus, the velocity of the collar D is 12.25in./s()_.

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Chapter 15 Solutions

Vector Mechanics for Engineers: Statics and Dynamics

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