• DocumentCode
    1569641
  • Title

    Changes in hemodynamics and aortic volume as assessed with a dual-Doppler system

  • Author

    Mistry, Nirav ; Atlas, Glen ; Desiderio, Michael ; Ritter, Arthur B.

  • Author_Institution
    Biomed. Eng., Stevens Inst. of Technol., Hoboken, NJ
  • fYear
    2009
  • Firstpage
    1
  • Lastpage
    2
  • Abstract
    The esophageal Doppler monitor (EDM) is a minimally-invasive device to measure aortic blood flow and quantify hemodynamics in patients. A modified dual-Doppler EDM, combined with pressure measurements, allows for measurement of aortic volume via the Bramwell-Hill equation. An in-vitro flow system was developed to model the cardioaortic circulation. This system consists of a pump to expel a viscous fluid through a thin-walled latex tube, to models the aorta, and stiff tubes to complete the flow loop and add ldquoperipheralrdquo resistance. Doppler analysis by Matlab programming yields critical hemodynamic parameters including pulse wave velocity (PWV), stroke volume (SV), pulse pressure (PP), heart rate (HR) and compliance (C) which combine to yield the Bramwell-Hill tube volume (VBH). Comparing calculated variables with in-vitro measurements at HRs of 50, 60 and 72 BPM established accuracy of plusmn4.5% (n=5) for SV and reproducibility for PWV of plusmn 20% (n=8). As PP increased, a decreasing C was observed. Results suggest changes in VBH are more sensitive to changes in HR and cardiac output than PP alone. Therefore, VBH may be a sensitive indicator of aortic volume changes (due to bleeding and changes in fluid status). The dual-Doppler technique demonstrated an accurate and reproducible method to monitor hemodynamics.
  • Keywords
    Doppler measurement; biomedical equipment; blood flow measurement; blood pressure measurement; blood vessels; cardiovascular system; patient monitoring; Bramwell-Hill equation; Matlab programming; aortic blood flow measurement; aortic volume measurement; cardioaortic circulation; dual-Doppler EDM device; esophageal Doppler monitor; hemodynamics; in-vitro flow system; in-vitro measurement; pulse wave velocity; thin-walled latex tube; Blood flow; Electrical resistance measurement; Esophagus; Fluid flow measurement; Heart rate; Hemodynamics; In vitro; Mathematical model; Patient monitoring; Pressure measurement;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Bioengineering Conference, 2009 IEEE 35th Annual Northeast
  • Conference_Location
    Boston, MA
  • Print_ISBN
    978-1-4244-4362-8
  • Electronic_ISBN
    978-1-4244-4364-2
  • Type

    conf

  • DOI
    10.1109/NEBC.2009.4967838
  • Filename
    4967838