Referring to Problem 7, how much will the capacitor charge if the pulse width is increased to 12 ms?
A. 2.51 V
B. 25.14 V
C. 4.86 V
D. 12.76 V
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The output of an RC integrator is taken across the
A. Diode
B. Capacitor
C. Resistor
D. Source
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Referring this circuit, determine the maximum output voltage when a single pulse is applied as shown. The total resistance is 60 Ω.
A. 2.73 V
B. 27.33 V
C. 30 V
D. 2.67 V
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In an integrator, when the pulse width of the input is much less than the transient time, the output voltage approaches the shape of the input.
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In an electric circuit, the reaction of a circuit to a given pulse input is known as the pulse response.
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In an RC differentiator, responding to repetitive pulses, the average value of the output.
A. Is zero
B. Is equal to the input voltage
C. Is 63 percent of the input voltage
D. Cannot be determined
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If a periodic pulse waveform has a pulse width and the time between pulses each equal to or greater than five time constants, the capacitor will
A. Partially charge and fully discharge during each period of the input waveform
B. Fully charge and partially discharge during each period of the input waveform
C. Fully charge and fully discharge during each period of the input waveform
D. Partially charge and partially discharge during each period of the input waveform
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In an RL integrating circuit, the output voltage is taken across the inductor.
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In an RC differentiating circuit, the output voltage is taken across the resistor.
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In an RL differentiating circuit, the output voltage is taken across the resistor.
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When a 12 V input pulse with a width equal to one time constant is applied to an RC integrator, the capacitor charges to.
A. 0 V
B. 12 V
C. 6.3 V
D. 7.56 V
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When a 24 V input pulse with a width equal to five time constants is applied to an RC integrator, the capacitor charges to
A. 24 V
B. 15.12 V
C. 20.64 V
D. 12 V
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When a 15 V input pulse with a width equal to two time constants is applied to an RC integrator, the capacitor charges to
A. 15 V
B. 12.9 V
C. 8.6 V
D. 19.45 V
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Referring to the bellow figure, determine the voltage level that the output will reach during the pulse.
A. 0 V
B. 15 V
C. 6.3 V
D. 9.45 V
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In an RC integrating circuit, the output voltage is taken across the capacitor.
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With an RL integrator, at the instant of the rising pulse edge,
A. All the input voltage is across the resistor
B. All the input voltage is across the inductor
C. 63 percent of the input voltage is across the resistor
D. 63 percent of the input voltage is across the inductor
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An RC differentiator acts as a
A. Low-pass filter
B. High-pass filter
C. Band-pass filter
D. Band-stop filter
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The rising and falling edges of a pulse waveform contain the higher frequency component.
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A single 6 V pulse with a width of 600 μs is applied to an integrator consisting of a 150 kΩ resistor and a 0.002 μF capacitor. To what voltage will the capacitor charge?
A. 0 V
B. 3.78 V
C. 5.16 V
D. 6 V
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An integrator consists of a 3.3 kΩ resistor and a 2 μF capacitor. A single 30 V, 6 ms pulse is applied to the input. How much will the capacitor charge?
A. 10.3 V
B. 30 V
C. 12.09 V
D. 17.91 V
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