5 CONCLUSIONS
This paper describes a novel defibrillator capable to
implement different defibrillation pulses, namely: the
MDS, BTE and RBW waveforms, using different
electrical and electronic components and circuits.
With respect to the Lown defibrillator is only
possible to define the energy delivered to the patient.
The generated MDS waveforms in the test bed, were
validated using the results obtained from simulation
of the RLC circuit under the same assumptions. The
defibrillator settings allow BTE and RBW waveforms
provision by means of the H bridge circuit usage. An
external micro-controller is responsible for the pulses
different phases timings accordingly with the
measured patient impedance value. The retrieved
laboratory results, from the defibrillator, were
compared and validated with the ones obtained by the
circuits simulation.
Additionally, more advanced features were also
employed and implemented in order to evaluate the
effectiveness of different defibrillation waveforms
and parameters during clinical trials.
Moreover, the design, implementation and test of
the developed configurable defibrillator in the LSS
curricular unit has engaged students on R&D
activities; promoted the academic success, the
students’ motivation facing a real practice problem
and the improvement of students’ skills teamwork,
communication and leadership.
ACKNOWLEDGEMENTS
This work has been supported by the Portuguese
Foundation for Science and Technology (FCT) under
project grant UID/MULTI/00308/2019.
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