Loose Leaf For Vector Mechanics For Engineers: Statics And Dynamics
Loose Leaf For Vector Mechanics For Engineers: Statics And Dynamics
11th Edition
ISBN: 9780077687427
Author: Ferdinand P. Beer, E. Russell Johnston Jr., David Mazurek, Phillip J. Cornwell
Publisher: McGraw-Hill Education
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Chapter 15.1, Problem 15.3P

The motion of an oscillating flywheel is defined by the relation θ = θ 0 e 7 π t / 6 sin 4 π t , where θ is expressed in radians and t in seconds. Knowing that θ0 = 0.4 rad, determine the angular coordinate, the angular velocity, and the angular acceleration of the flywheel when (a) t = 0.125 s, (b) t = ∞.

Chapter 15.1, Problem 15.3P, The motion of an oscillating flywheel is defined by the relation =0e7t/6sin4t, where  is expressed

Fig. P15.2 and P15.3

(a)

Expert Solution
Check Mark
To determine

Find the angular coordinate, angular velocity, and angular acceleration of the flywheel at time t=0.125s.

Answer to Problem 15.3P

The angular coordinate, angular velocity, and angular acceleration of the flywheel at time t=0.125s are 0.253rad_, 0.927rad/s_, and 36.55rad/s2_.

Explanation of Solution

Given information:

Show the expression for the motion of the flywheel as follows:

θ=θ0e7πt/6sin4πt (1)

Here, θ is in radians, and t is in seconds.

Consider the angular coordinate, angular velocity, and angular acceleration of the flywheel are denoted by θ, ω, and α respectively.

The value of θ0 is 0.4.

Calculation:

Modify Equation (1).

Substitute 0.4 for θ0.

θ=0.4e7πt/6sin4πt (2)

Calculate the angular coordinate at time t=0.125s using the relation:

Substitute 0.125 for t in Equation (2).

θ=0.4e7π(0.125)/6sin4π(0.125)=0.4×0.63245sin(π2)=0.4×0.63245×1=0.253rad

Thus, the angular coordinate of the flywheel at time t=0.125s is 0.253rad_.

Calculate the angular velocity at time t=0.125s using the relation:

Differentiate Equation (2) with respect to time as follows:

ω=dθdt=ddt(0.4e7πt/6sin4πt)=0.4ddt(e7πt/6sin4πt)=0.4(7π6e7πt/6sin4πt+4πe7πt/6cos4πt) (3)

Substitute 0.125 for t in Equation (3).

ω=0.4(7π6e7π(0.125)/6sin4π(0.125)+4πe7π(0.125)/6cos4π(0.125))=0.4(7π6×0.63245×1+4π×0.63245×0)=0.4(7π6×0.63245×1)=7π6×0.25298rad/s

ω=0.927rad/s

Thus, the angular velocity of the flywheel at time t=0 is 0.927rad/s_.

Calculate the angular acceleration at time t=0s using the relation:

Differentiate Equation (3) with respect to time as follows:

α=dωdt=ddt[0.4(7π6e7πt/6sin4πt+4πe7πt/6cos4πt)]=0.4ddt(7π6e7πt/6sin4πt+4πe7πt/6cos4πt)=0.4(49π236e7πt/6sin4πt28π26e7πt/6cos4πt28π26e7πt/6cos4πt16π2e7πt/6cos4πt)

α=0.4(49π236e7πt/6sin4πt28π23e7πt/6cos4πt16π2e7πt/6cos4πt) (4)

Substitute 0.125 for t in Equation (4).

α=0.4(49π236e7π(0.125)/6sin4π(0.125)28π23e7π(0125)/6cos4π(0.125)16π2e7π(0.125)/6cos4π(0.125))=0.4(028π23×0.63245×116π2×0.63245×1)=36.55rad/s2

Thus, the angular acceleration of the flywheel at time t=0.125s is 36.55rad/s2_.

(b)

Expert Solution
Check Mark
To determine

Find the angular coordinate, angular velocity, and angular acceleration of the flywheel at time t=.

Answer to Problem 15.3P

The angular coordinate, angular velocity, and angular acceleration of the flywheel at time t= are 0rad_, 0rad/s_, and 0rad/s2_.

Explanation of Solution

Given information:

Calculation:

Calculate the angular coordinate at time t= using the relation:

Substitute for t in Equation (2).

θ=0.4(e7π()/6)sin4π()=0.4×0×sin4π()=0rad

Thus, the angular coordinate of the flywheel at time t= is 0rad_.

Calculate the angular velocity at time t= using the relation:

Substitute for t in Equation (3).

ω=0.4(7π6e7π()/6sin4π()+4πe7π(0.125)/6cos4π())=0rad/s

Thus, the angular velocity of the flywheel at time t= is 0rad/s_.

Calculate the angular acceleration at time t= using the relation:

Substitute for t in Equation (4).

α=0.4(49π236e7π()/6sin4π()28π23e7π()/6cos4π()16π2e7π()/6cos4π())=0rad/s2

Thus, the angular acceleration of the flywheel at time t=0.125s is 0rad/s2_.

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Chapter 15 Solutions

Loose Leaf For Vector Mechanics For Engineers: Statics And Dynamics

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