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Voltage-Series Feedback
Voltage-Series Feedback

... desired set-point speed, negative feedback causes the throttle to close, thereby reducing speed; similarly, if the car slows, negative feedback acts to open the throttle. The use of negative feedback reduces the gain. Part of the output signal is taken back to the input with a negative sign. ...
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... Using complementary common-emitter outputs provides an output swing to within 30mV of ground and 60mV of the positive supply. The high output drive current and low differential gain and phase errors also make it ideal for single-supply consumer video products. Low distortion operation is ensured by ...
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... defects in material or workmanship for a period of one year from the date of original purchase, and agrees to repair or to replace at its discretion any defective unit at no cost for either parts or labor during this period. Restrictions This warranty does not cover damages caused through accidents, ...
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... to detect small currents shown in fig.2 [6].A simple current-source inverting amplifier seems attractive for many applications, but its large output resistance prevents its use at high speed, especially for capacitive loads. High speed current comparator requires low input impedance for increased cu ...
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... The output capacitor is required to stabilize and help the transient response of the LDO. The AP7363 is stable with any type of capacitor, with no limitations on minimum or maximum ESR. The device is designed to have excellent transient response for most applications with a small amount of output ca ...
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... recommended: The kp gain is low, and the ki gain is not so large to avoid large overshoot and to have stable performance. With this proposed algorithm, the compensating period required to maintain a high power factor is as the same as the PWM sampling period (Tpf = Ts). As the output changes, the PI ...
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... You should be able to discuss: • The amplitude of the response and resonance • The phase of the response • The nature of the behavior at all frequencies • The transfer of the series LCR circuit analysis to ...
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... • Considering signal level and power specifications, the bias current in each stage was set to 500 µA; • The gm/ID ratio of the input differential pair and the cross-coupled transistors were set to 8 and 4, respectively, in order to achieve the maximum gain requirement of 24 dB at 40 MHz; • The curr ...
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MAX1703 1-Cell to 3-Cell, High-Power (1.5A), Low-Noise, Step-Up DC-DC Converter ________________General Description
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Phase-locked loop

A phase-locked loop or phase lock loop (PLL) is a control system that generates an output signal whose phase is related to the phase of an input signal. While there are several differing types, it is easy to initially visualize as an electronic circuit consisting of a variable frequency oscillator and a phase detector. The oscillator generates a periodic signal. The phase detector compares the phase of that signal with the phase of the input periodic signal and adjusts the oscillator to keep the phases matched. Bringing the output signal back toward the input signal for comparison is called a feedback loop since the output is ""fed back"" toward the input forming a loop.Keeping the input and output phase in lock step also implies keeping the input and output frequencies the same. Consequently, in addition to synchronizing signals, a phase-locked loop can track an input frequency, or it can generate a frequency that is a multiple of the input frequency. These properties are used for computer clock synchronization, demodulation, and frequency synthesis.Phase-locked loops are widely employed in radio, telecommunications, computers and other electronic applications. They can be used to demodulate a signal, recover a signal from a noisy communication channel, generate a stable frequency at multiples of an input frequency (frequency synthesis), or distribute precisely timed clock pulses in digital logic circuits such as microprocessors. Since a single integrated circuit can provide a complete phase-locked-loop building block, the technique is widely used in modern electronic devices, with output frequencies from a fraction of a hertz up to many gigahertz.
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