Title :
Design and characterization of electronic sensing system for a 13 × 13 biomechanical ground reaction sensor array
Author :
Guo, Qinglai ; Suster, Michael A. ; Surapaneni, R. ; Mastrangelo, Carlos H. ; Young, Douglas J.
Author_Institution :
Electr. & Comput. Eng. Dept., Univ. of Utah, Salt Lake City, UT, USA
Abstract :
This paper presents the design and characterization of an electronic sensing system interfaced with a high-density flexible biomechanical ground reaction sensor array (GRSA). The prototype system can be incorporated into a personal boot heel to measure real-time ground force shear strain and sole deformation associated with a human bipedal locomotion thus providing zero-velocity correction to an inertial measurement unit placed in a close proximity. This approach can greatly reduce inertial error accumulation over time and improve positioning accuracy. The electronic sensing system consists of a front-end multiplexer that can sequentially connect individual capacitive sensing nodes from a 13 × 13 GRSA to a capacitance-to-voltage converter followed by a 12-bit ADC sampled at 66.7 k-samples/sec a digital timing & control unit and a driving circuitry. The electronics were fabricated in XFAB 0.35 μm CMOS process and can achieve a gait ground velocity sensing resolution of 40 μm/sec while dissipating 3mW power.
Keywords :
CMOS integrated circuits; analogue-digital conversion; biomechanics; biosensors; capacitive sensors; force measurement; strain measurement; ADC; CMOS process; capacitance-to-voltage converter; capacitive sensing nodes; control unit; digital timing unit; driving circuitry; electronic sensing system; front-end multiplexer; gait ground velocity sensing resolution; high-density flexible biomechanical ground reaction sensor array; human bipedal locomotion; inertial error accumulation; inertial measurement unit; personal boot heel; positioning accuracy; power 3 mW; real-time ground force shear strain; size 0.35 mum; sole deformation; word length 12 bit; zero-velocity correction; Accuracy; Arrays; Capacitance; Force; Noise; Prototypes; Sensors;
Conference_Titel :
Custom Integrated Circuits Conference (CICC), 2013 IEEE
Conference_Location :
San Jose, CA
DOI :
10.1109/CICC.2013.6658448