A low noise and high precision linear power supply was designed for use in rare event search experiments with macrobolometers. The circuit accepts at the input a "noisy" dual supply voltage up to ±15 V and gives at the output precise, low noise, and stable voltages that can be set between ±3.75 V and ±12.5 V in eight 1.25 V steps. Particular care in circuit design, component selection, and proper filtering results in a noise spectral density of 50 nV / Hz at 1 Hz and 20 nV / Hz white when the output is set to ±5 V. This corresponds to 125 nV RMS (0.8 μV peak to peak) between 0.1 Hz and 10 Hz, and 240 nV RMS (1.6 μV peak to peak) between 0.1 Hz and 100 Hz. The power supply rejection ratio (PSRR) of the circuit is 100 dB at low frequency, and larger than 40 dB up to high frequency, thanks to a proper compensation design. Calibration allows to reach a precision in the absolute value of the output voltage of ±70 ppm, or ±350 μV at ±5 V, and to reduce thermal drifts below ±1 ppm/°C in the expected operating range. The maximum peak output current is about 6 A from each output. An original foldback protection scheme was developed that dynamically limits the maximum output current to keep the temperature of the output transistors within their safe operating range. An add-on card based on an ARM Cortex-M3 microcontroller is devoted to the monitoring and control of all circuit functionalities and provides remote communication via CAN bus.

Carniti, P., Cassina, L., Gotti, C., Maino, M., Pessina, G. (2016). A low noise and high precision linear power supply with thermal foldback protection. REVIEW OF SCIENTIFIC INSTRUMENTS, 87(5) [10.1063/1.4948390].

A low noise and high precision linear power supply with thermal foldback protection

CARNITI, PAOLO
Primo
;
CASSINA, LORENZO
Secondo
;
GOTTI, CLAUDIO
;
MAINO, MATTEO
Penultimo
;
PESSINA, GIANLUIGI EZIO
Ultimo
2016

Abstract

A low noise and high precision linear power supply was designed for use in rare event search experiments with macrobolometers. The circuit accepts at the input a "noisy" dual supply voltage up to ±15 V and gives at the output precise, low noise, and stable voltages that can be set between ±3.75 V and ±12.5 V in eight 1.25 V steps. Particular care in circuit design, component selection, and proper filtering results in a noise spectral density of 50 nV / Hz at 1 Hz and 20 nV / Hz white when the output is set to ±5 V. This corresponds to 125 nV RMS (0.8 μV peak to peak) between 0.1 Hz and 10 Hz, and 240 nV RMS (1.6 μV peak to peak) between 0.1 Hz and 100 Hz. The power supply rejection ratio (PSRR) of the circuit is 100 dB at low frequency, and larger than 40 dB up to high frequency, thanks to a proper compensation design. Calibration allows to reach a precision in the absolute value of the output voltage of ±70 ppm, or ±350 μV at ±5 V, and to reduce thermal drifts below ±1 ppm/°C in the expected operating range. The maximum peak output current is about 6 A from each output. An original foldback protection scheme was developed that dynamically limits the maximum output current to keep the temperature of the output transistors within their safe operating range. An add-on card based on an ARM Cortex-M3 microcontroller is devoted to the monitoring and control of all circuit functionalities and provides remote communication via CAN bus.
Articolo in rivista - Articolo scientifico
Power supply circuits; Reconfigurable hardware; Spectral density; Circuit functionality; Compensation designs; Component selection; Dual supply voltages; Monitoring and control; Noise spectral density; Power supply rejection ratio; Remote communication; Integrated circuit manufacture; brain cortex; calibration; compensation; filtration; monitoring; noise; power supply; spectrometry; transistor;
English
2016
87
5
054706
none
Carniti, P., Cassina, L., Gotti, C., Maino, M., Pessina, G. (2016). A low noise and high precision linear power supply with thermal foldback protection. REVIEW OF SCIENTIFIC INSTRUMENTS, 87(5) [10.1063/1.4948390].
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/10281/121069
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