
Concept explainers
A small object is attached to the end of a string to form a simple pendulum. The period of its harmonic motion is measured for small
(a)

The period of motion for each length of simple pendulum.
Answer to Problem 15.44P
The period of motion for the length
Explanation of Solution
Given info: The lengths of the simple pendulum are
For the
Here,
Thus, the period for the
For the
Here,
Thus, the period for the
For the
Here,
Thus, the period for the
Conclusion:
Therefore, the period of motion for the length
(b)

The mean value of
Answer to Problem 15.44P
The mean value of
Explanation of Solution
Given info: The lengths of the simple pendulum are
The period of the oscillation of the pendulum is,
Here,
Take square on the both sides and calculate the
Substitute
Thus, the mean value of
Substitute
Thus, the mean value of
Substitute
Thus, the mean value of
Conclusion:
Therefore, the mean value of
(c)

To draw: The graph of
Answer to Problem 15.44P
The graph of
Figure (1)
The value of the
Explanation of Solution
Given info: The lengths of the simple pendulum are
In the part (a), the periods of different given length of pendulum are calculated. Make a table of square of periods
|
|
|
|
|
|
|
|
The above table gives ordered pairs.
Take the ordered pairs from above given table and join them by a straight line and plot the graph of
Figure (1)
The Figure (1) shows the graph of
From the above graph, the slope of the line is,
Here,
Substitute
From the equation of the period of the pendulum,
The slope of
So,
(d)

The comparison of values of
Answer to Problem 15.44P
The value of
Explanation of Solution
Given info: The lengths of the simple pendulum are
From part (c) the value of
Both values of
Conclusion:
Therefore, the value of
Want to see more full solutions like this?
Chapter 15 Solutions
Physics for Scientists and Engineers, Volume 1, Chapters 1-22
- Considering the cross-sectional area shown in Fig.2: 1. Determine the coordinate y of the centroid G (0, ỹ). 2. Determine the moment of inertia (I). 3. Determine the moment of inertia (Ir) (with r passing through G and r//x (// parallel). 4 cm 28 cm G3+ G 4 cm y 12 cm 4 cm 24 cm xarrow_forwardI need help understanding 7.arrow_forwardThe stress-strain diagram for a steel alloy is given in fig. 3. Determine the modulus of elasticity (E). σ (ksi) 40 30 20 10 0 0 0.0005 0.001 0.0015 0.002 0.0025 0.0030.0035 Earrow_forward
- A Van de Graff generator, if the metal sphere on the Van de Graff has a charge of 0.14 Coulombs and the person has a mass of 62 kg, how much excess charge would the person need in order to levitate at a distance 25 cm from the center of the charged metal sphere? Assume you can treat both the person and the metal sphere as point charges a distance 25 cm from each other using Coulomb's Law to calculate the electrical force. Give your answer as the number of Coulombsarrow_forwardPlease help me answer the following question. I am having trouble understanding the directions of the things the question is asking for. Please include a detailed explanation and possibly drawings of the directions of Bsource, Binduced, and Iinduced.arrow_forward43. A mass må undergoes circular motion of radius R on a hori- zontal frictionless table, con- nected by a massless string through a hole in the table to a second mass m² (Fig. 5.33). If m₂ is stationary, find expres- sions for (a) the string tension and (b) the period of the circu- lar motion. m2 R m₁ FIGURE 5.33 Problem 43arrow_forward
- CH 70. A block is projected up an incline at angle 0. It returns to its initial position with half its initial speed. Show that the coefficient of ki- netic friction is μk = tano.arrow_forwardPassage Problems A spiral is an ice-skating position in which the skater glides on one foot with the other foot held above hip level. It's a required element in women's singles figure-skating competition and is related to the arabesque performed in ballet. Figure 5.40 shows Canadian skater Kaetlyn Osmond executing a spiral during her medal-winning perfor- mance at the 2018 Winter Olympics in Gangneung, South Korea. 77. From the photo, you can conclude that the skater is a. executing a turn to her left. b. executing a turn to her right. c. moving in a straight line out of the page. 78. The net force on the skater a. points to her left. b. points to her right. c. is zero. 79. If the skater were to execute the same maneuver but at higher speed, the tilt evident in the photo would be a. less. b. greater. c. unchanged. FIGURE 5.40 Passage Problems 77-80 80. The tilt angle 0 that the skater's body makes with the vertical is given ap- proximately by 0 = tan¯¹(0.5). From this you can conclude…arrow_forwardFrictionless surfarrow_forward
- 71. A 2.1-kg mass is connected to a spring with spring constant 72 k = 150 N/m and unstretched length 18 cm. The two are mounted on a frictionless air table, with the free end of the spring attached to a frictionless pivot. The mass is set into circular mo- tion at 1.4 m/s. Find the radius of its path. cor moving at 77 km/h negotiat CH —what's the minimum icient of frictioarrow_forward12. Two forces act on a 3.1-kg mass that undergoes acceleration = 0.91 0.27 m/s². If one force is -1.2î – 2.5ĵ N, what's the other?arrow_forward36. Example 5.7: You whirl a bucket of water around in a vertical circle of radius 1.22 m. What minimum speed at the top of the circle will keep the water in the bucket?arrow_forward
- Physics for Scientists and Engineers: Foundations...PhysicsISBN:9781133939146Author:Katz, Debora M.Publisher:Cengage LearningPrinciples of Physics: A Calculus-Based TextPhysicsISBN:9781133104261Author:Raymond A. Serway, John W. JewettPublisher:Cengage LearningClassical Dynamics of Particles and SystemsPhysicsISBN:9780534408961Author:Stephen T. Thornton, Jerry B. MarionPublisher:Cengage Learning
- University Physics Volume 1PhysicsISBN:9781938168277Author:William Moebs, Samuel J. Ling, Jeff SannyPublisher:OpenStax - Rice UniversityModern PhysicsPhysicsISBN:9781111794378Author:Raymond A. Serway, Clement J. Moses, Curt A. MoyerPublisher:Cengage LearningPhysics for Scientists and EngineersPhysicsISBN:9781337553278Author:Raymond A. Serway, John W. JewettPublisher:Cengage Learning





