PHYSICS 1250 PACKAGE >CI<
PHYSICS 1250 PACKAGE >CI<
9th Edition
ISBN: 9781305000988
Author: SERWAY
Publisher: CENGAGE LEARNING (CUSTOM)
Question
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Chapter 15, Problem 15.41P

(a)

To determine

The maximum speed of the bob.

(a)

Expert Solution
Check Mark

Answer to Problem 15.41P

The maximum speed of the bob is 0.820m/s.

Explanation of Solution

The formula to calculate amplitude is,

    A=Lθ

Here, L is the length of pendulum and θ is the displaced angle.

Substitute 1.00m for L and 15.0° for θ in above equation to find A.

    A=(1.00m)(15.0°(π180°))=0.262m

The formula to calculate angular frequency is,

    ω=gL

Here, g is the acceleration due to gravity.

Substitute 1.00m for L and 9.8m/s2 for g in above equation to find ω.

    ω=9.8m/s21.00m=3.13rad/s

The formula to calculate maximum speed is,

    vmax=Aω

Substitute 0.262m for A and 3.13rad/s for ω in above equation to find vmax.

    vmax=(0.262m)(3.13rad/s)=0.820m/s

Conclusion:

Therefore, the maximum speed of the bob is 0.820m/s.

(b)

To determine

The maximum acceleration of the bob.

(b)

Expert Solution
Check Mark

Answer to Problem 15.41P

The maximum acceleration of the bob is 2.57rad/s2.

Explanation of Solution

The formula to calculate maximum acceleration of the bob is,

    amax=Aω2

Substitute 0.262m for A and 3.13rad/s for ω in above equation to find amax.

    amax=(0.262 m)(3.13rad/s)2=2.57rad/s2

Conclusion:

Therefore, the maximum acceleration of the bob is 2.57rad/s2.

(c)

To determine

The maximum restoring force of the bob.

(c)

Expert Solution
Check Mark

Answer to Problem 15.41P

The maximum restoring force of the bob is 0.641N.

Explanation of Solution

The formula to calculate maximum restoring force of the bob is,

    F=mamax

Here, m is the mass of the pendulum.

Substitute Aω2 for amax in above equation.

    F=mAω2

Substitute 0.250kg for m, 0.262 m for A and 3.13rad/s for ω in above equation to find F.

    F=(0.250kg)(0.262m)(3.13rad/s)2=0.641N

Conclusion:

Therefore, the maximum restoring force of the bob is 0.641N.

(d)

To determine

The maximum speed, angular acceleration and restoring force of the bob using the model introduced earlier chapter.

(d)

Expert Solution
Check Mark

Answer to Problem 15.41P

The maximum speed of the bob is 0.817m/s, the angular acceleration of the bob is 2.54rad/s2 and the restoring force of the bob is 0.634N.

Explanation of Solution

Consider the figure given below.

PHYSICS 1250 PACKAGE >CI<, Chapter 15, Problem 15.41P

In triangle ABC,

    cosθ=ACABAC=ABcosθ=Lcosθ

The height of the bob is,

    h=ADAC=LLcosθ=L(1cosθ)

The law of conservation of energy is,

    mgh=12mvmax2

Substitute L(1cosθ) for h in above expression.

    mgL(1cosθ)=12mvmax2gL(1cosθ)=12vmax2

Substitute 15.0° for θ, 1.00m for L and 9.8m/s2 for g in above equation to find vmax.

    (9.8m/s2)(1.00m)(1cos(15.0°))=12vmax2vmax2=2(0.333)m2/s2vmax=2(0.333)m2/s2=0.817m/s

The formula for the moment of inertia of the pendulum is,

    I=mL2

The equation for the conservation of energy is,

    Iα=mgLsinθ

Here, α is the angular acceleration.

Substitute mL2 for I in above expression and rearrange for α.

    mL2α=mgLsinθα=mgLsinθmL2=gsinθL

Substitute 9.8m/s2 for g, 1.00m for L and 15.0° for θ in above equation to find α.

    α=(9.8m/s2)sin(15.0°)1.00m=2.54rad/s2

The force is maximum, when the angle is maximum.

The restoring force is calculated as,

    F=mgsinθ

Substitute 15.0° for θ, 0.250kg for m and 9.8m/s2 for g in above equation to find F.

    F=(0.250kg)(9.8m/s2)sin(15.0°)=0.634N

Conclusion:

Therefore, the maximum speed of the bob is 0.817m/s, the angular acceleration of the bob is 2.54rad/s2 and the restoring force of the bob is 0.634N.

(e)

To determine

The answers of part (a), part (c) and part (d).

(e)

Expert Solution
Check Mark

Explanation of Solution

The restoring force is defined as the force or torque that tends to restore a system to equilibrium after displacement.

The answers are closest but not exactly the same. The angular amplitude of 15.0° is not small, so the simple harmonic oscillation is not accurate. The answers computed from conservation of the energy and from Newton’s second law are more accurate.

Conclusion:

Therefore, the answers are closest but not exactly the same.

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Chapter 15 Solutions

PHYSICS 1250 PACKAGE >CI<

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