Chapter 23: Q35PE (page 861)
Show that if a coil rotates at an angular velocity \({\rm{\omega }}\)the period of its AC output is
Short Answer
The time period of AC output with angular velocity is .
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Chapter 23: Q35PE (page 861)
Show that if a coil rotates at an angular velocity \({\rm{\omega }}\)the period of its AC output is
The time period of AC output with angular velocity is .
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The Tethered Satellite discussed in this module is producing 5.00 kV, and a current of 10.0 A flows. (a) What magnetic drag force does this produce if the system is moving at 7.80 km/s? (b) How much kinetic energy is removed from the system in 1.00 h, neglecting any change in altitude or velocity during that time? (c) What is the change in velocity if the mass of the system is 100,000 kg? (d) Discuss the long-term consequences (say, a week-long mission) on the space shuttle’s orbit, noting what effect a decrease in velocity has and assessing the magnitude of the effect.
Approximately how does the emf induced in the loop in Figure 23.57(b) depend on the distance of the center of the loop from the wire?

What is the resonant frequency of a inductor connected to acapacitor?
Suppose you have a supply of inductors ranging from 1.00 nHto 10.0 H, and capacitors ranging from 0.100 pFto 0.100 F. What is the range of resonant frequencies that can be achieved from combinations of a single inductor and a single capacitor?
The capacitor in Figure\(23.55\)(b) will filter high-frequency signals by shorting them to earth/ground. (a) What capacitance is needed to produce a reactance of\(10.0{\rm{ }}m\Omega \)for a\(5.00{\rm{ }}kHz\)signal? (b) What would its reactance be at\(3.00{\rm{ }}Hz\)? (c) Discuss the implications of your answers to (a) and (b).
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