DocumentCode :
35856
Title :
A Thorax Simulator for Complex Dynamic Bioimpedance Measurements With Textile Electrodes
Author :
Ulbrich, Mark ; Muhlsteff, Jens ; Teichmann, Daniel ; Leonhardt, Steffen ; Walter, Marian
Author_Institution :
Dept. of Med. Inf. Technol., RWTH Aachen Univ., Aachen, Germany
Volume :
9
Issue :
3
fYear :
2015
fDate :
Jun-15
Firstpage :
412
Lastpage :
420
Abstract :
Bioimpedance measurements on the human thorax are suitable for assessment of body composition or hemodynamic parameters, such as stroke volume; they are non-invasive, easy in application and inexpensive. When targeting personal healthcare scenarios, the technology can be integrated into textiles to increase ease, comfort and coverage of measurements. Bioimpedance is generally measured using two electrodes injecting low alternating currents (0.5-10 mA) and two additional electrodes to measure the corresponding voltage drop. The impedance is measured either spectroscopically (bioimpedance spectroscopy, BIS) between 5 kHz and 1 MHz or continuously at a fixed frequency around 100 kHz (impedance cardiography, ICG). A thorax simulator is being developed for testing and calibration of bioimpedance devices and other new developments. For the first time, it is possible to mimic the complete time-variant properties of the thorax during an impedance measurement. This includes the dynamic real part and dynamic imaginary part of the impedance with a peak-to-peak value of 0.2 Ω and an adjustable base impedance (24.6 Ω ≥ Z0 ≥ 51.6 Ω). Another novelty is adjustable complex electrode-skin contact impedances for up to 8 electrodes to evaluate bioimpedance devices in combination with textile electrodes. In addition, an electrocardiographic signal is provided for cardiographic measurements which is used in ICG devices. This provides the possibility to generate physiologic impedance changes, and in combination with an ECG, all parameters of interest such as stroke volume (SV), pre-ejection period (PEP) or extracellular resistance (Re) can be simulated. The speed of all dynamic signals can be altered. The simulator was successfully tested with commercially available BIS and ICG devices and the preset signals are measured with high correlation (r = 0.996).
Keywords :
biomedical electrodes; biomimetics; calibration; electric impedance measurement; electrocardiography; haemodynamics; health care; machine testing; textile technology; ECG; PEP simulation; Re simulation; SV simulation; adjustable base impedance; adjustable complex electrode-skin contact impedance; bioimpedance device calibration; bioimpedance device testing; bioimpedance measurement comfort; bioimpedance measurement coverage; bioimpedance measurement ease; bioimpedance spectroscopy; body composition assessment; commercially available BIS device; commercially available ICG device; complete thorax time-variant property mimicking; complex dynamic bioimpedance measurement; continuous bioimpedance measurement; current 0.5 mA to 10 mA; dynamic imaginary impedance part; dynamic real impedance part; dynamic signal speed alteration; electrocardiographic signal; extracellular resistance simulation; fixed frequency; frequency 5 kHz to 1 MHz; hemodynamic parameter assessment; human thorax bioimpedance measurement; impedance cardiography; low alternating current injection; noninvasive method; peak-to-peak value; personal healthcare scenario; physiologic impedance change generation; pre-ejection period simulation; preset signal measurement correlation; stroke volume simulation; textile electrode; thorax simulator development; voltage drop measurement; Bioimpedance; Current measurement; Electrodes; Impedance; Impedance measurement; Textiles; Voltage measurement; Bioimpedance; cardiography; impedance; simulator; spectroscopy; textile electrodes;
fLanguage :
English
Journal_Title :
Biomedical Circuits and Systems, IEEE Transactions on
Publisher :
ieee
ISSN :
1932-4545
Type :
jour
DOI :
10.1109/TBCAS.2014.2337372
Filename :
6880405
Link To Document :
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