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Calibrated current divider network for precision current delivery during high-voltage transthoracic defibrillation.
O Carlton Deale1, Kwong T Ng, Bruce B Lerman
1Cardiology Division, Department of Medicine, Weill Medical College of Cornell University, New York, NY 10021, USA. ocdeale@ieee.org
IEEE Transactions on Bio-Medical Engineering
|November 16, 2005
Summary
A new calibrated current divider ensures precise current delivery for defibrillation shocks. This device maintains a constant pulse shape and minimizes error, validated in animal studies.
Area of Science:
- Biomedical Engineering
- Cardiovascular Devices
- Electrical Engineering
Background:
- Transthoracic defibrillation requires precise current delivery for efficacy and safety.
- Variations in transthoracic impedance can lead to inaccurate current delivery.
- Existing methods may struggle to maintain consistent current output across different impedance levels.
Purpose of the Study:
- To design and test a calibrated resistive-network current divider for precision current delivery in transthoracic defibrillation.
- To ensure a constant pulse shape delivered by the defibrillator.
- To minimize the error between selected and delivered current during defibrillation.
Main Methods:
- A resistive-network current divider with three rheostats was designed.
- A computer-generated calibration table was used to set current levels.
- Data acquisition and display software updated the calibration table post-shock based on measured transthoracic resistance.
- Testing was performed using resistive loads and animal models.
Main Results:
- The current divider presented a constant 50-ohm load to the defibrillator.
- Root-mean-square (rms) error for delivered versus selected current was 0.48% at 45 ohms and 0.71% at 100 ohms (15-27 A range).
- Animal experiments confirmed low rms error (0.49% from 15-27 A, ≤1.5% over 8-44 A range).
Conclusions:
- The calibrated resistive-network current divider enables precise current delivery during transthoracic defibrillation.
- The system effectively compensates for variations in transthoracic resistance.
- The design offers high accuracy and reliability, validated by experimental and animal data.