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LTM8031 - Ultralow Noise EMC 36V, 1A DC/DC uModule Regulator
LTM8031 - Ultralow Noise EMC 36V, 1A DC/DC uModule Regulator

... An internal regulator provides power to the control circuitry. The bias regulator can draw power from the VIN pin, but if the BIAS pin is connected to an external voltage higher than 2.8V, bias power will be drawn from the external source (typically the regulated output voltage). This improves effic ...
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... The MAX15035 pulse-width modulation (PWM) controller provides high efficiency, excellent transient response, and high DC-output accuracy. Combined with the internal low on-resistance MOSFETs, the MAX15035 provides a highly efficient and compact solution for small form factor applications that need a ...
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... of approximately 5 to 10 dB can be expected by using this “trick”. The same effect may be seen by using extra charge storage on the collector, but the results usually are not nearly as dramatic. The closer together the two input test tones f1 and f2 are in frequency, the lower frequency the product ...
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... The TLV27x takes the minimum operating supply voltage down to 2.7 V over the extended automotive temperature range while adding the rail-to-rail output swing feature. This makes it an ideal alternative to the TLC27x family for applications where rail-to-rail output swings are essential. The TLV27x a ...
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... A new fully balanced differential CMOS operational transconductance amplifier (OTA) with common-mode feedback (CMFB) detection is proposed. The common-mode feedback circuit can be economically implemented. The common-mode tuning loop allows a constant d.c. level at both differential outputs for bias ...
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... • A small AC voltage (e.g. 10 mV – 1 V) is imposed on the sample over a wide range of frequencies (e.g. 1 MHz – 0.1 Hz), and the complex impedance is measured NorFERM-2008, Gol ...
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... • A small AC voltage (e.g. 10 mV – 1 V) is imposed on the sample over a wide range of frequencies (e.g. 1 MHz – 0.1 Hz), and the complex impedance is measured NorFERM-2008, Gol ...
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... voltage references, offering exceptional noise and drift performance. This low noise and drift is ideally suited for the high resolution measurements required by instrumentation and test equipment. In addition, the LTC6655 is fully specified over the temperature range of –40°C to 125°C, ensuring its ...
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... towards the completion of this research and the largest project of my life. His work ethic, humor, and emphasis on the little things in life, will not be forgotten. Second, acknowledgment of the support and commitment I have received from Dr. Paul Furth throughout the duration of my educational expe ...
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... www.BDTIC.com/TI ...
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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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