Title :
Electrostatically levitated ring-shaped rotational-gyro/accelerometer using all-digital OFDM detection with TAD
Author :
Terasawa, T. ; Watanabe, Toshio ; Murakoshi, Takayuki
Author_Institution :
Corp. R&D Div. 3, DENSO Corp., Kariya, Japan
Abstract :
This paper presents a five-axis ring-MEMS rotational-gyro/accelerometer with an all-digital sensor circuit except for a C/V converter. For achieving all-digital construction, we apply Orthogonal Frequency Division Multiplexing (OFDM) using the all-digital TAD-OFDM concept for detecting multi-axis position signals of a single MEMS-ring element (dia. 1.5 mm), which is electrostatically levitated with a PWM-drive force-balance servo-system, using no analog elements after the C/V converter. In this sensor, seven carrier waves are set with specified frequencies arranged in accordance with power-of-two relationship including their π/2-phase-shift waves. Hence, the multiplex-detecting signals can be simultaneously demodulated just by using adders/subtractors. Thanks to this method, we can perfectly separate PWM-drive periods from multi-axis position sensing periods. In this study, the maximally-digital rotational-gyro/accelerometer performance with a 9-bit 25-MS/s TAD in a 0.65-μm CMOS and PWM-drive force-balance technology is experimentally confirmed with FPGA and DSP on the test board, achieving resolutions both 0.1 deg/s/LSB and 1 mG/LSB with a noise level of 0.03 deg/s/Hz1/2 and 0.3 mG/Hz1/2, respectively, without the need for any conventional ADCs and DACs.
Keywords :
CMOS integrated circuits; OFDM modulation; accelerometers; adders; demodulation; digital signal processing chips; electrostatic devices; field programmable gate arrays; microsensors; pulse width modulation; sensor fusion; servomechanisms; π-2-phase-shift wave; ADC; C-V converter; CMOS; DAC; DSP; FPGA; PWM-drive force-balance servosystem; PWM-drive force-balance technology; TAD; adders-subtractors; all-digital OFDM detection; all-digital sensor circuit; electrostatically levitated ring-shaped rotational-gyroaccelerometer; five-axis ring-MEMS rotational-gyroaccelerometer; maximally-digital rotational-gyroaccelerometer performance; multiaxis position signal detection; multiplex-detecting signal; orthogonal frequency division multiplexing; single MEMS-ring element; size 0.65 mum; size 1.5 mm; test board; word length 9 bit; Accelerometers; Demodulation; Electrodes; OFDM; Rotors; Sensors;
Conference_Titel :
Sensors, 2012 IEEE
Conference_Location :
Taipei
Print_ISBN :
978-1-4577-1766-6
Electronic_ISBN :
1930-0395
DOI :
10.1109/ICSENS.2012.6411037