(a)
The current in the
(a)
Answer to Problem 54AP
The current in
Explanation of Solution
Write the expression based on the junction rule.
Here,
Write the expression to obtain the loop rule.
Here,
Write the expression for the potential difference based on Ohm’s law.
Here,
The flow of current in the circuit is as shown in the figure below.
Figure-(1)
Here,
Write the equation of Kirchhoff’s voltage rule in the left loop.
Write the equation of Kirchhoff’s voltage rule in the right loop.
Conclusion:
Solve equation (I) and (II) to calculate
Therefore, the current in
(b)
The power delivered to the
(b)
Answer to Problem 54AP
The power delivered to the
Explanation of Solution
Write the expression to obtain the power across the
Here,
Conclusion:
Substitute
Therefore, the power delivered to the
(c)
The circuit in which Kirchhoff’s rule is required in find the value of current.
(c)
Answer to Problem 54AP
The Kirchhoff’s rule is required to find the value of current in case of circuit (c).
Explanation of Solution
In case of circuit (c), the current is flowing across each resistor and voltage drops at each resistor. As both the batteries of same emf are not in the same loop, thus, some amount of current will flow in the circuit. Hence, Kirchhoff’s rule is applicable in this case.
Conclusion:
In the case of the other two circuits, both the batteries of same emf are in the same loop. Thus they cancel out each other and no current flow in the circuit (b) and circuit (d).
Therefore, The Kirchhoff’s rule is required in find the value of current in case of circuit (c).
(d)
The circuit in which the smallest amount of power is delivered to the
(d)
Answer to Problem 54AP
The smallest power is delivered across the
Explanation of Solution
Conclusion:
The current flow diagram for circuit (b) is as shown in the figure below.
Figure-(2)
Write the equation of Kirchhoff’s voltage rule in right loop.
Write the expression based on junction rule.
Solve equation (III) and (IV) to calculate
Thus, the current across the circuit (b) is zero.
Therefore, the power delivered to across
The current flow diagram for circuit (c) is as shown in the figure below.
Figure-(3)
Write the equation of Kirchhoff’s voltage rule in the left loop.
Write the equation of Kirchhoff’s voltage rule in the left loop.
Solve equation (V) and (VI) to calculate
Write the expression to obtain the power across the
Here,
Substitute
Therefore, the power delivered to the
The current flow diagram for circuit (d) is as shown in the figure below.
Figure-(4)
Write the equation of Kirchhoff’s voltage rule in left loop.
Write the equation of Kirchhoff’s voltage rule in left loop.
Solve equation (VII) and (VIII) to calculate
Thus, the current across the circuit (d) is zero.
Therefore, the power delivered to across
Therefore the smallest power is delivered across
Want to see more full solutions like this?
Chapter 28 Solutions
Physics For Scientists And Engineers With Modern Physics, 9th Edition, The Ohio State University
- What is the equivalent resistance between points a and b of the six resistors shown in Figure P29.70? FIGURE P29.70arrow_forwardCalculate the power delivered to each resistor in the circuit shown in Figure P21.43. Figure P21.43arrow_forwardFigure P29.46 shows a circuit with a 12.0-V battery connected to four resistors. How much power is delivered to each resistor?arrow_forward
- In the circuit of Figure P21.51, determine (a) the current in each resistor and (b) the potential difference across the 200- resistor. Figure P21.51arrow_forwardFor the circuit shown in Figure P28.55. the ideal voltmeter reads 6.00 V and the ideal ammeter reads 3.00-k. Find (a) the value of K, (b) the emf of the battery, and (c) the voltage across the 3.00-kft resistor.arrow_forwardConsider a series RC circuit as in Figure P28.38 for which R = 1.00 M, C = 5.00 F, and = 30.0 V. Find (a) the time constant of the circuit and (b) the maximum charge on the capacitor after the switch is thrown closed. (c) Find the current in the resistor 10.0 s after the switch is closed.arrow_forward
- The values of the components in a simple series RC circuit containing a switch (Fig. P21.53) are C = 1.00 F, R = 2.00 106 , and = 10.0 V. At the instant 10.0 s after the switch is closed, calculate (a) the charge on the capacitor, (b) the current in the resistor, (c) the rate at which energy is being stored in the capacitor, and (d) the rate at which energy is being delivered by the battery.arrow_forwardConsider the circuit shown in Figure P28.21 on page 860. (a) Find the voltage across the 3.00-0 resistor, (b) Find the current in the 3.00-12 resistor.arrow_forwardConsider the circuit shown in Figure P21.39. Find (a) the current in the 20.0- resistor and (b) the potential difference between points a and b. Figure P21.39arrow_forward
- The circuit shown in Figure P21.47 is connected for 2.00 min. (a) Determine the current in each branch of the circuit. (b) Find the energy delivered by each battery. (c) Find the energy delivered to each resistor. (d) Identify the type of energy storage transformation that occurs in the operation of the circuit. (e) Find the total amount of energy transformed into internal energy in the resistors. Figure P21.47 Problems 47 and 48.arrow_forwardIf the terminals of a battery with zero internal resistance are connected across two identical resistors in series, the total power delivered by the battery is 8.00 W. If the same battery is connected across the same resistors in parallel, what is the total power delivered by the battery? (a) 16.0 W (b) 32.0 W (c) 2.00 W (d) 4.00 W (e) none of those answersarrow_forwardFigure P29.45 shows five resistors connected between terminals a and b. a. What is the equivalent resistance of this combination of resistors? b. What is the current through each resistor if a 24.0-V battery is connected across the terminals?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 Learning
- Physics for Scientists and Engineers with Modern ...PhysicsISBN:9781337553292Author:Raymond A. Serway, John W. JewettPublisher:Cengage LearningPhysics for Scientists and EngineersPhysicsISBN:9781337553278Author:Raymond A. Serway, John W. JewettPublisher:Cengage LearningCollege PhysicsPhysicsISBN:9781305952300Author:Raymond A. Serway, Chris VuillePublisher:Cengage Learning