DocumentCode
2056978
Title
Comparative study of voltage controlled current sources for biompedance measurements
Author
Bouchaala, Dhouha ; Chen, Xinyue ; Shi, Qinghai ; Kanoun, Olfa ; Derbel, Nabil
Author_Institution
Res. Unit of Intell. Control, Design & Optimization of Complex Syst. (ICOS), Nat. Sch. of Eng. of Sfax (ENIS), Sfax, Tunisia
fYear
2012
fDate
20-23 March 2012
Firstpage
1
Lastpage
6
Abstract
For bioimpedance measurement, the design of a voltage controlled current source (VCCS) is important to have a good compromise between performance of final results and patient safety. VCCS should have simultaneously large output impedance and wide bandwidth. In this paper, we compare between the Tietze topology, with and without Negative Capacitance Circuit (NCC), and the Improved Howland Current pump ICSA topology. Best results were reached with a Tietze current source with NCC over a wideband frequency range from 10 KHz to 1 MHz. The experiments show that the Tietze VCCS is able to drive loads of 25 Ω to 10 KΩ with current amplitude below 0.5 mA within the accuracy of 0.57% in practice. This fulfills even the requirements for bioimpedance measurements especially at high frequency and high load impedance.
Keywords
bioelectric potentials; capacitance; constant current sources; electric impedance measurement; voltage control; Howland current pump ICSA topology; Tietze current source; Tietze topology; biompedance measurements; frequency 10 kHz to 1 MHz; high frequency impedance; high load impedance; negative capacitance circuit; output impedance; resistance 25 ohm to 10 kohm; voltage controlled current sources; Bioimpedance; Biomedical measurements; Capacitance; Current measurement; Impedance; Topology; Voltage measurement; Bioimpedance measurement; Improved Howland Current Pump; Negative Capacitance Circuit; Tietze topology; voltage controlled current source;
fLanguage
English
Publisher
ieee
Conference_Titel
Systems, Signals and Devices (SSD), 2012 9th International Multi-Conference on
Conference_Location
Chemnitz
Print_ISBN
978-1-4673-1590-6
Electronic_ISBN
978-1-4673-1589-0
Type
conf
DOI
10.1109/SSD.2012.6198108
Filename
6198108
Link To Document