
(a)
The resistance of each light bulb.
(a)

Answer to Problem 34AP
The resistance of lightbulb A is
Explanation of Solution
Given information: Power of light bulb A is
Formula to calculate the resistance of lightbulb A.
Here,
Substitute
Thus, the resistance of lightbulb A is
Formula to calculate the resistance of lightbulb B.
Here,
Substitute
Thus, the resistance of lightbulb B is
Conclusion:
Therefore, the resistance of lightbulb A is
(b)
The time interval through which
(b)

Answer to Problem 34AP
The time interval through which
Explanation of Solution
Given information: Power of light bulb A is
Formula to calculate the current flowing in th light bulb A.
Here,
Substitute
Thus, the current flowing in th light bulb A is
Formula to calculate the time interval through which
Here,
Substitute
Thus, the time interval through which
Conclusion:
Therefore, the time interval through which
(c)
The reason that this charge is different upon its exit versus its entry into the light bulb or not.
(c)

Answer to Problem 34AP
This charge is not different upon its exit versus its entry into the light bulb because the current is charged over the time and is the same everywhere on the series circuit.
Explanation of Solution
Given information: Power of light bulb A is
No, the existing charge is the same amount as the entering charge into the light bulb because the current is charged over the time and is the same everywhere on the series circuit.
Thus, this charge is not different upon its exit versus its entry into the light bulb because the current is charged over the time and is the same everywhere on the series circuit.
Conclusion:
Therefore, this charge is not different upon its exit versus its entry into the light bulb because the current is charged over the time and is the same everywhere on the series circuit.
(d)
The time interval through which
(d)

Answer to Problem 34AP
The time interval through which
Explanation of Solution
Given information: Power of light bulb A is
Formula to calculate the time interval through which
Here,
Substitute
Thus, the time interval through which
Conclusion:
Therefore, the time interval through which
(e)
The mechanism through which this energy enter and exit the light bulb.
(e)

Answer to Problem 34AP
The mechanism through which this energy enter and exit the light bulb is that the bulb is connected to the electrical energy source by wires, usually by a wire like copper, which mainly carries the current of electrons into and out the bulb.
Explanation of Solution
Given information: Power of light bulb A is
In this mechanism, the bulb is connected to the electrical energy source by wires, usually by a wire like copper, which mainly carries the current of electrons into and out the bulb.
Thus, the mechanism through which this energy enter and exit the light bulb is that the bulb is connected to the electrical energy source by wires, usually by a wire like copper, which mainly carries the current of electrons into and out the bulb.
Conclusion:
Therefore, the mechanism through which this energy enter and exit the light bulb is that the bulb is connected to the electrical energy source by wires, usually by a wire like copper, which mainly carries the current of electrons into and out the bulb.
(f)
The cost of running light bulb A continuously for
(f)

Answer to Problem 34AP
The cost of running light bulb A continuously for
Explanation of Solution
Given information: Power of light bulb A is
Write the expression for the energy for light bulb A works continuously for
Here,
Substitute
Thus, the energy for light bulb A works continuously for
Formula to calculate the cost of running light bulb A continuously for
Here,
Substitute
Thus, the cost of running light bulb A continuously for
Conclusion:
Therefore, the cost of running light bulb A continuously for
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Chapter 26 Solutions
Physics for Scientists and Engineers with Modern Physics
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