Concept explainers
(a)
The force constant of the spring.
(a)
Answer to Problem 28P
The force constant of the spring is
Explanation of Solution
Given that the force is
Since the horizontal force of
Write the expression for the force constant of the spring.
Here,
Conclusion:
Substitute
Therefore, the force constant of the spring is
(b)
The frequency of oscillation of the spring-object system.
(b)
Answer to Problem 28P
The frequency of oscillation of the spring-object system is
Explanation of Solution
Given that the mass of the object is
Write the expression for the frequency of oscillation of the spring-object system.
Here,
Conclusion:
Substitute
Therefore, the frequency of oscillation of the spring-object system is
(c)
The maximum speed of the object.
(c)
Answer to Problem 28P
The maximum speed of the object is
Explanation of Solution
Given that the displacement from the equilibrium position is
Write the expression for the maximum speed of the object executing
Here,
The amplitude of motion is equal to the initial displacement of the object which is
Write the expression for the angular frequency.
Use equation (IV) in (III).
Conclusion:
Substitute
Therefore, the maximum speed of the object is
(d)
The position where maximum speed occur.
(d)
Answer to Problem 28P
The position where maximum speed occur is
Explanation of Solution
For the oscillating spring-object system, the objects loses all its potential energy and gains maximum kinetic energy at the equilibrium point. Since the maximum kinetic energy corresponds to the maximum speed, the object gains maximum speed at the equilibrium position, which is described by the coordinate,
Conclusion:
Therefore, the position where maximum speed occur is
(e)
The maximum acceleration of the object.
(e)
Answer to Problem 28P
The maximum acceleration of the object is
Explanation of Solution
Write the expression for the maximum acceleration of the object executing SHM.
Here,
Use equation (IV) in (VI).
Conclusion:
Substitute
Therefore, the maximum acceleration of the object is
(f)
The position where the maximum acceleration occur.
(f)
Answer to Problem 28P
The position where the maximum acceleration occur is
Explanation of Solution
For the oscillating spring-object system, the maximum acceleration occurs where the object reverses its direction of motion. This happens only at the positions corresponding to the maximum displacement. Which is
Conclusion:
Therefore, the position where the maximum acceleration occur is
(g)
The total energy of the oscillating system.
(g)
Answer to Problem 28P
The total energy of the oscillating system is
Explanation of Solution
It is obtained that the force constant of the spring is
Write the expression for the energy of the spring-object oscillating system.
Here,
Conclusion:
Substitute
Therefore, the total energy of the oscillating system is
(h)
The speed of the object when its position is equal to one-third the maximum value.
(h)
Answer to Problem 28P
The speed of the object when its position is equal to one-third the maximum value is
Explanation of Solution
Write the expression for the speed at a given position of an object executing SHM in a spring.
Here,
Since the position is one-third the maximum value (
Conclusion:
Substitute
Therefore, the speed of the object when its position is equal to one-third the maximum value is
(i)
The acceleration of the object when its position is equal to one-third the maximum value.
(i)
Answer to Problem 28P
The speed of the object when its position is equal to one-third the maximum value is
Explanation of Solution
Write the expression for the acceleration at a given position of an object executing SHM in a spring.
Here,
Since the position is one-third the maximum value (
Conclusion:
Substitute
Therefore, the speed of the object when its position is equal to one-third the maximum value is
Want to see more full solutions like this?
Chapter 15 Solutions
Physics for Scientists and Engineers with Modern Physics, Technology Update
- Correct answer No chatgpt pls will upvotearrow_forwardStatistical thermodynamics. The number of imaginary replicas of a system of N particlesa) cannot be greater than Avogadro's numberb) must always be greater than Avogadro's number.c) has no relation to Avogadro's number.arrow_forwardLab-Based Section Use the following information to answer the lab based scenario. A student performed an experiment in an attempt to determine the index of refraction of glass. The student used a laser and a protractor to measure a variety of angles of incidence and refraction through a semi-circular glass prism. The design of the experiment and the student's results are shown below. Angle of Incidence (°) Angle of Refraction (º) 20 11 30 19 40 26 50 31 60 36 70 38 2a) By hand (i.e., without using computer software), create a linear graph on graph paper using the student's data. Note: You will have to manipulate the data in order to achieve a linear function. 2b) Graphically determine the index of refraction of the semi-circular glass prism, rounding your answer to the nearest hundredth.arrow_forward
- Use the following information to answer the next two questions. A laser is directed at a prism made of zircon (n = 1.92) at an incident angle of 35.0°, as shown in the diagram. 3a) Determine the critical angle of zircon. 35.0° 70° 55 55° 3b) Determine the angle of refraction when the laser beam leaves the prism.arrow_forwardUse the following information to answer the next two questions. A laser is directed at a prism made of zircon (n = 1.92) at an incident angle of 35.0°, as shown in the diagram. 3a) Determine the critical angle of zircon. 35.0° 70° 55 55° 3b) Determine the angle of refraction when the laser beam leaves the prism.arrow_forwardNo chatgpt pls will upvotearrow_forward
- A beam of alpha-particles of energy 7.3MeV is used.The protons emitted at an angle of zero degree are found to have energy of 9.34MeV.Find the Q-value of this reaction .arrow_forwardAn aluminum rod and a copper rod have the same length of 100cm at 5C. At what temperatures would one of the rods be 0.5 mm longer than the other? Which rod is longer at such temperature?arrow_forwardROTATIONAL DYNAMICS Question 01 A solid circular cylinder and a solid spherical ball of the same mass and radius are rolling together down the same inclined. Calculate the ratio of their kinetic energy. Assume pure rolling motion Question 02 A sphere and cylinder of the same mass and radius start from ret at the same point and more down the same plane inclined at 30° to the horizontal Which body gets the bottom first and what is its acceleration b) What angle of inclination of the plane is needed to give the slower body the same acceleration Question 03 i) Define the angular velocity of a rotating body and give its SI unit A car wheel has its angular velocity changing from 2rads to 30 rads seconds. If the radius of the wheel is 400mm. calculate ii) The angular acceleration iii) The tangential linear acceleration of a point on the rim of the wheel Question 04 in 20arrow_forward
- Question B3 Consider the following FLRW spacetime: t2 ds² = -dt² + (dx² + dy²+ dz²), t2 where t is a constant. a) State whether this universe is spatially open, closed or flat. [2 marks] b) Determine the Hubble factor H(t), and represent it in a (roughly drawn) plot as a function of time t, starting at t = 0. [3 marks] c) Taking galaxy A to be located at (x, y, z) = (0,0,0), determine the proper distance to galaxy B located at (x, y, z) = (L, 0, 0). Determine the recessional velocity of galaxy B with respect to galaxy A. d) The Friedmann equations are 2 k 8πG а 4πG + a² (p+3p). 3 a 3 [5 marks] Use these equations to determine the energy density p(t) and the pressure p(t) for the FLRW spacetime specified at the top of the page. [5 marks] e) Given the result of question B3.d, state whether the FLRW universe in question is (i) radiation-dominated, (ii) matter-dominated, (iii) cosmological-constant-dominated, or (iv) none of the previous. Justify your answer. f) [5 marks] A conformally…arrow_forwardSECTION B Answer ONLY TWO questions in Section B [Expect to use one single-sided A4 page for each Section-B sub question.] Question B1 Consider the line element where w is a constant. ds²=-dt²+e2wt dx², a) Determine the components of the metric and of the inverse metric. [2 marks] b) Determine the Christoffel symbols. [See the Appendix of this document.] [10 marks] c) Write down the geodesic equations. [5 marks] d) Show that e2wt it is a constant of geodesic motion. [4 marks] e) Solve the geodesic equations for null geodesics. [4 marks]arrow_forwardPage 2 SECTION A Answer ALL questions in Section A [Expect to use one single-sided A4 page for each Section-A sub question.] Question A1 SPA6308 (2024) Consider Minkowski spacetime in Cartesian coordinates th = (t, x, y, z), such that ds² = dt² + dx² + dy² + dz². (a) Consider the vector with components V" = (1,-1,0,0). Determine V and V. V. (b) Consider now the coordinate system x' (u, v, y, z) such that u =t-x, v=t+x. [2 marks] Write down the line element, the metric, the Christoffel symbols and the Riemann curvature tensor in the new coordinates. [See the Appendix of this document.] [5 marks] (c) Determine V", that is, write the object in question A1.a in the coordinate system x'. Verify explicitly that V. V is invariant under the coordinate transformation. Question A2 [5 marks] Suppose that A, is a covector field, and consider the object Fv=AAμ. (a) Show explicitly that F is a tensor, that is, show that it transforms appropriately under a coordinate transformation. [5 marks] (b)…arrow_forward
- Principles of Physics: A Calculus-Based TextPhysicsISBN:9781133104261Author:Raymond A. Serway, John W. JewettPublisher:Cengage LearningPhysics for Scientists and Engineers: Foundations...PhysicsISBN:9781133939146Author:Katz, Debora M.Publisher:Cengage LearningClassical Dynamics of Particles and SystemsPhysicsISBN:9780534408961Author:Stephen T. Thornton, Jerry B. MarionPublisher:Cengage Learning
- Physics for Scientists and Engineers, Technology ...PhysicsISBN:9781305116399Author:Raymond A. Serway, John W. JewettPublisher:Cengage LearningUniversity Physics Volume 1PhysicsISBN:9781938168277Author:William Moebs, Samuel J. Ling, Jeff SannyPublisher:OpenStax - Rice UniversityPhysics for Scientists and EngineersPhysicsISBN:9781337553278Author:Raymond A. Serway, John W. JewettPublisher:Cengage Learning