• DocumentCode
    1417452
  • Title

    A versatile mechanical ventilator (DIGIT) with high flow stability and a programmable inspiratory phase flow pattern

  • Author

    Grianti, Francesco ; Montecchia, Francesco ; Di Gari, L. ; Baldassarri, Massimo

  • Author_Institution
    Inst. of Phys. & Bioeng., Urbino Univ., Italy
  • Volume
    43
  • Issue
    11
  • fYear
    1996
  • Firstpage
    1062
  • Lastpage
    1072
  • Abstract
    Describes the general characteristics of a newly developed nonconstant-flow generator for automatic ventilation of the lungs. It is known that the application of very high pressure to high internal resistance leads to a very stable flow, in that the flow itself is unaffected by external load (patient) variations. The stability of the flow means that the inspiratory process can be controlled by means of the ventilated volume, thus extending DIGIT utilization to high resistance patients. The modulation of the flow is implemented via a digital electromechanical system, which allows the ventilator functions to be accurately programmed. The desired flow waveform is obtained by means of a series of pneumatic valves, the apertures of which are digitally controlled. The design is innovative in that it allows the flow waveform in each of the ten digitalized time steps into which each inspiratory phase is divided to be both programmed and controlled. Other ventilators commercially available and currently in use do not have this functional capability, as they are all designed to model the integral flow of the inspiratory waveform without being able to modify the subunit time steps of a single inspiratory phase. The authors also discuss the results of fundamental tests concerning the performance characteristics of the ventilator.
  • Keywords
    flow control; orthotics; pneumodynamics; DIGIT; automatic lung ventilation; digital electromechanical system; digitalized time steps; external load variations; flow modulation; flow waveform; high flow stability; integral flow; nonconstant-flow generator; performance characteristics; pneumatic valves series; programmable inspiratory phase flow pattern; versatile mechanical ventilator; very stable flow; Automatic control; Character generation; Digital modulation; Electromechanical systems; Lungs; Modulation coding; Process control; Stability; Valves; Ventilation; Airway Resistance; Carbon Dioxide; Electronics; Equipment Design; Humans; Intensive Care Units; Oxygen; Pressure; Pulmonary Ventilation; Respiration; Respiration, Artificial; Respiratory Insufficiency;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/10.541248
  • Filename
    541248