Pregled bibliografske jedinice broj: 1257326
Ring Oscillator Based Smart Temperature Sensor Using All-Digital Sigma-Delta Modulator
Ring Oscillator Based Smart Temperature Sensor Using All-Digital Sigma-Delta Modulator // 2022 Austrochip Workshop on Microelectronics (Austrochip)
Villach, Austrija: Institute of Electrical and Electronics Engineers (IEEE), 2022. str. 65-68 doi:10.1109/austrochip56145.2022.9940813 (poster, međunarodna recenzija, cjeloviti rad (in extenso), znanstveni)
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Naslov
Ring Oscillator Based Smart Temperature Sensor Using
All-Digital Sigma-Delta Modulator
Autori
Tolic, Ivan Porin ; Schatzberger, Gregor ; Baric, Adrijan
Vrsta, podvrsta i kategorija rada
Radovi u zbornicima skupova, cjeloviti rad (in extenso), znanstveni
Izvornik
2022 Austrochip Workshop on Microelectronics (Austrochip)
/ - : Institute of Electrical and Electronics Engineers (IEEE), 2022, 65-68
Skup
2022 Austrochip Workshop on Microelectronics (Austrochip)
Mjesto i datum
Villach, Austrija, 10.10.2022. - 12.10.2022
Vrsta sudjelovanja
Poster
Vrsta recenzije
Međunarodna recenzija
Ključne riječi
Temperature sensors , Ring oscillators , Temperature measurement , Temperature distribution , Sigma-delta modulation , Monte Carlo methods , System-on-chip
Sažetak
In this work, an on-chip smart temperature sensor is presented. The design is based on a bias circuit providing two bias currents, two ring oscillators, an up/dow n counter, and a simple binary counter. One bias current has a positive temperature coefficient (PTAT), while the other bias current has a negative temperature coefficient (CTAT). The two currents bias the ring oscillators, producing the PTAT and the CTAT frequency clocks. The outputs of the two oscillators are combined and further processed using the all-digital implementation of time domain Sigma-Delta (Σ△) converter. The architecture is designed in 180-nm technology, and the nominal simulation results are presented, together with Monte Carlo analysis. The achieved accuracy (3σ) is ±5.4∘C , within the temperature range from −40∘C to 125∘C , and the mean resolution is 0.293∘C .
Izvorni jezik
Engleski
Znanstvena područja
Elektrotehnika
POVEZANOST RADA
Ustanove:
Fakultet elektrotehnike i računarstva, Zagreb