Physics
Physics
3rd Edition
ISBN: 9781259233616
Author: GIAMBATTISTA
Publisher: MCG
bartleby

Videos

Question
Book Icon
Chapter 21, Problem 65P

(a)

To determine

The resonant angular frequency ω0.

(a)

Expert Solution
Check Mark

Answer to Problem 65P

Resonant angular frequency is 750rad/s.

Explanation of Solution

Write the equation to find the resonant frequency of a series LCR circuit.

    ω0=1LC

Here, ω0 is the resonant angular frequency, L is the inductance, and C is the capacitance.

Conclusion:

Substitute 0.800H for L and 2.22μF for C in the above equation to find ω0.

    ω0=1(0.800H)(2.22μF(106F1μF))=5.6×105rad2/s2=750rad/s

Therefore, the resonant angular frequency is 750rad/s.

(b)

To determine

Draw the phasor diagram at resonance.

(b)

Expert Solution
Check Mark

Explanation of Solution

Write the relation between inductive and capacitive reactance at resonance.

    XL=XC

Here, XL is the inductive reactance and XC is the capacitive reactance.

Write the relation between voltages across inductor and capacitor at resonance.

    VL=VC

Here, VL is the voltage across inductor and VC is the voltage across capacitor at resonance.

Write the relation between impedance and resistance at resonance.

    Z=R

Here, Z is the impedance and R is the resistance.

Draw the Phasor diagram at resonance.

Physics, Chapter 21, Problem 65P

Here, VR is the voltage across the resistance R. The phasor diagram shows that VL and VC differ by 180° out of phase.

(c)

To determine

The rms voltages Vab,Vbc,Vcd,Vbd,andVad.

(c)

Expert Solution
Check Mark

Answer to Problem 65P

Voltages Vab,Vbc,Vcd,Vbd,andVad are 440V,1.1kV, 1.1kV, 0Vand440V respectively.

Explanation of Solution

Write the equation to find the rms current.

    Irms=εrmsZ                                                                                                                (I)

Here, Irms is the rms current and εrms is the rms voltage.

Write the equation to find Vab.

  Vab=IrmsR                                                                                                              (II)

Write the equation to find Vbc.

  Vbc=IrmsXL                                                                                                           (III)

Write the equation for XL.

    XL=ω0L                                                                                                               (IV)

Rewrite equation (III) by substituting equations (I) and (IV).

    Vbc=(εrmsZ)(ω0L)                                                                                                 (V)

Write the relation between Vbc and Vcd.

    Vbc=Vcd                                                                                                              (VI)

Write the equation to find Vad.

  Vad=εrms                                                                                                           (VII)

Conclusion:

Substitute 440V for εrms and 250Ω for R in equation (I) to find Irms.

    Irms=440V250Ω=1.76A

Substitute 1.76A for Irms and 250Ω for R in equation (II) to find Vab.

  Vab=(1.76A)(250Ω)=440V

Substitute 440V for εrms, 750rad/s for ω0, 0.800H for L, and 250Ω for Z in equation (III) to find Vbc.

  Vbc=(440V250Ω)((750rad/s)(0.800H))=1100V(1kV103V)=1.1kV

Substitute 1.1kV for Vbc in equation (VI) to find Vcd.

Since the voltage across the inductor and capacitor is 180° out of phase, Vbd will be zero.

Substitute 440V for εrms in equation (VII) to find Vad.

  Vad=440V

Therefore, voltages Vab,Vbc,Vcd,Vbd,andVad are 440V,1.1kV, 1.1kV, 0Vand440V respectively.

(d)

To determine

The angular frequency of resonance at R=125Ω.

(d)

Expert Solution
Check Mark

Answer to Problem 65P

Resonant angular frequency is 750rad/s.

Explanation of Solution

Resonant angular frequency is independent of resistance in the circuit. That means the value ω0 remains unchanged even the value of R is changed.

Therefore, the resonant angular frequency is 750rad/s.

(e)

To determine

New rms current with R=125Ω.

(e)

Expert Solution
Check Mark

Answer to Problem 65P

New rms current is 3.5A.

Explanation of Solution

Write the equation to find Irms.

  Irms=εrmsR

Conclusion:

Substitute 440V for εrms and 125Ω for R in the above equation to find Irms.

    Irms=440V125Ω=3.5A

Therefore, new rms current is 3.5A.

Want to see more full solutions like this?

Subscribe now to access step-by-step solutions to millions of textbook problems written by subject matter experts!
Students have asked these similar questions
suggest a reason ultrasound cleaning is better than cleaning by hand?
Checkpoint 4 The figure shows four orientations of an electric di- pole in an external electric field. Rank the orienta- tions according to (a) the magnitude of the torque on the dipole and (b) the potential energy of the di- pole, greatest first. (1) (2) E (4)
What is integrated science. What is fractional distillation What is simple distillation

Chapter 21 Solutions

Physics

Ch. 21 - Prob. 1CQCh. 21 - 2. Electric power is distributed long distances...Ch. 21 - 3. Explain the differences between average...Ch. 21 - Prob. 4CQCh. 21 - Prob. 5CQCh. 21 - Prob. 6CQCh. 21 - Prob. 7CQCh. 21 - Prob. 8CQCh. 21 - Prob. 9CQCh. 21 - Prob. 10CQCh. 21 - Prob. 11CQCh. 21 - Prob. 12CQCh. 21 - Prob. 13CQCh. 21 - Prob. 14CQCh. 21 - Prob. 15CQCh. 21 - Prob. 16CQCh. 21 - Prob. 17CQCh. 21 - 18. Let’s examine the crossover network of Fig....Ch. 21 - Prob. 1MCQCh. 21 - Prob. 2MCQCh. 21 - Prob. 3MCQCh. 21 - Prob. 4MCQCh. 21 - Prob. 5MCQCh. 21 - Prob. 6MCQCh. 21 - Prob. 7MCQCh. 21 - Prob. 8MCQCh. 21 - Prob. 9MCQCh. 21 - 10. Which graph is correct if the circuit...Ch. 21 - 1. A lightbulb is connected to a 120 V (rms), 60...Ch. 21 - 3. A 1500 w heater runs on 120 V rms. What is the...Ch. 21 - 4. A circuit breaker trips when the rms current...Ch. 21 - 5. A 1500 W electric hair dryer is designed to...Ch. 21 - 6. A 4.0 kW heater is designed to be connected to...Ch. 21 - 7. (a) What rms current is drawn by a 4200 w...Ch. 21 - 8. A television set draws an rms current of 2.50 A...Ch. 21 - 9. The instantaneous sinusoidal emf from an ac...Ch. 21 - 10. A hair dryer has a power rating of 1200 W at...Ch. 21 - Prob. 11PCh. 21 - 12. A variable capacitor with negligible...Ch. 21 - 13. At what frequency is the reactance of a 6.0...Ch. 21 - 14. A 0.400 μF capacitor is connected across the...Ch. 21 - 15. A 0.250 μF capacitor is connected to a 220 V...Ch. 21 - 16. A capacitor is connected across the terminals...Ch. 21 - 17. Show, from XC = l/(ωC), that the units of...Ch. 21 - 18. The charge on a capacitor in an ac circuit is...Ch. 21 - 19. A capacitor (capacitance = C) is connected to...Ch. 21 - 20. Three capacitors (2.0 μF, 3.0 μF, 6.0 μF) are...Ch. 21 - 21. A capacitor and a resistor are connected in...Ch. 21 - 22. A variable inductor with negligible resistance...Ch. 21 - Prob. 23PCh. 21 - Prob. 24PCh. 21 - 25. A solenoid with a radius of 8.0 × 10−3 m and...Ch. 21 - 26. A 4.00 mH inductor is connected to an ac...Ch. 21 - 27. Two ideal inductors (0.10 H, 0.50 H) are...Ch. 21 - Prob. 28PCh. 21 - 29. Suppose that an ideal capacitor and an ideal...Ch. 21 - 30. The voltage across an inductor and the...Ch. 21 - 31. Make a figure analogous to Fig. 21.5 for an...Ch. 21 - 32. A 25.0 mH inductor, with internal resistance...Ch. 21 - 33. An inductor has an impedance of 30.0 Ω and a...Ch. 21 - 34. A 6.20 mH inductor is one of the elements in...Ch. 21 - 35. A series combination of a resistor and a...Ch. 21 - 36. A 300.0 Ω resistor and a 2.5 μF capacitor are...Ch. 21 - Prob. 37PCh. 21 - 38. (a) Find the power factor for the RLC series...Ch. 21 - 39. A computer draws an rms current of 2.80 A at...Ch. 21 - 40. An RLC series circuit is connected to an ac...Ch. 21 - 41. An ac circuit has a single resistor,...Ch. 21 - 42. An RLC circuit has a resistance of 10.0 Ω,...Ch. 21 - 43. An ac circuit contains a 12.5 Ω resistor, a...Ch. 21 - 44. ✦ A 0.48 μF capacitor is connected in series...Ch. 21 - 45. A series combination of a 22.0 mH inductor...Ch. 21 - Prob. 46PCh. 21 - 47. A 150 Ω resistor is in series with a 0.75...Ch. 21 - 48. A series circuit with a resistor and a...Ch. 21 - 49. (a) What is the reactance of a 10.0 mH...Ch. 21 - Prob. 50PCh. 21 - Prob. 51PCh. 21 - Prob. 52PCh. 21 - Prob. 53PCh. 21 - Prob. 54PCh. 21 - 55. To test hearing at various frequencies, a...Ch. 21 - Prob. 56PCh. 21 - Prob. 57PCh. 21 - Prob. 58PCh. 21 - Prob. 59PCh. 21 - Prob. 60PCh. 21 - Prob. 61PCh. 21 - Prob. 62PCh. 21 - Prob. 63PCh. 21 - Prob. 64PCh. 21 - Prob. 65PCh. 21 - Prob. 66PCh. 21 - Prob. 67PCh. 21 - Prob. 68PCh. 21 - Prob. 69PCh. 21 - 70. The phasor diagram for a particular RLC series...Ch. 21 - Prob. 71PCh. 21 - Prob. 72PCh. 21 - Prob. 73PCh. 21 - Prob. 74PCh. 21 - Prob. 75PCh. 21 - Prob. 76PCh. 21 - Prob. 77PCh. 21 - Prob. 78PCh. 21 - Prob. 79PCh. 21 - Prob. 80PCh. 21 - Prob. 81PCh. 21 - Prob. 82PCh. 21 - Prob. 83PCh. 21 - Prob. 84PCh. 21 - 85. (a) When the resistance of an RLC series...Ch. 21 - Prob. 86PCh. 21 - Prob. 87PCh. 21 - Prob. 88PCh. 21 - Prob. 89PCh. 21 - Prob. 90PCh. 21 - Prob. 91PCh. 21 - Prob. 92PCh. 21 - Prob. 93PCh. 21 - Prob. 94PCh. 21 - Prob. 95PCh. 21 - Prob. 96PCh. 21 - Prob. 97PCh. 21 - Prob. 98PCh. 21 - Prob. 99PCh. 21 - Prob. 100PCh. 21 - Prob. 101P
Knowledge Booster
Background pattern image
Physics
Learn more about
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, physics and related others by exploring similar questions and additional content below.
Similar questions
SEE MORE QUESTIONS
Recommended textbooks for you
Text book image
College Physics
Physics
ISBN:9781305952300
Author:Raymond A. Serway, Chris Vuille
Publisher:Cengage Learning
Text book image
University Physics (14th Edition)
Physics
ISBN:9780133969290
Author:Hugh D. Young, Roger A. Freedman
Publisher:PEARSON
Text book image
Introduction To Quantum Mechanics
Physics
ISBN:9781107189638
Author:Griffiths, David J., Schroeter, Darrell F.
Publisher:Cambridge University Press
Text book image
Physics for Scientists and Engineers
Physics
ISBN:9781337553278
Author:Raymond A. Serway, John W. Jewett
Publisher:Cengage Learning
Text book image
Lecture- Tutorials for Introductory Astronomy
Physics
ISBN:9780321820464
Author:Edward E. Prather, Tim P. Slater, Jeff P. Adams, Gina Brissenden
Publisher:Addison-Wesley
Text book image
College Physics: A Strategic Approach (4th Editio...
Physics
ISBN:9780134609034
Author:Randall D. Knight (Professor Emeritus), Brian Jones, Stuart Field
Publisher:PEARSON
Introduction To Alternating Current; Author: Tutorials Point (India) Ltd;https://www.youtube.com/watch?v=0m142qAZZpE;License: Standard YouTube License, CC-BY