Literature DB >> 16340369

In vitro fluid mechanical effects of thoracic artificial lung compliance.

John W McGillicuddy1, Sean D Chambers, Darren T Galligan, Ronald B Hirschl, Robert H Bartlett, Keith E Cook.   

Abstract

This in vitro study sought to determine what compliance minimizes thoracic artificial lung impedance and pump power output. A pulsatile pump drove 3.0 cP glycerol through a circuit consisting of an MC3 Biolung preceded by a piston-cylinder (PC, n = 5) chamber with a variable compliance or a polyurethane (n = 4) chamber with a fixed, yet pressure-dependent, compliance. Each chamber was tested at flow rates of 1.8, 3.0, and 5.0 l/min and heart rates of 60, 75, and 100 bpm. Compliances, C, from 0-20 ml/mm Hg were tested in the PC chamber. Instantaneous pump outlet flow and pressure were acquired for determination of device zeroth and first harmonic input impedance, Z(0) and Z(1), and pump steady and pulsatile output powers, P(s) and P(p). PC chamber results indicate that Z(0), Z(1), P(s), and Pp were minimized at C > 1, 5, 0.5, and 4 ml/mm Hg, respectively. This suggests that C should be 1 ml/mm Hg at minimum and ideally 5 ml/mm Hg. The polyurethane chamber was statistically similar to the PC chamber at C = 1 ml/mm Hg when comparing Z(0) and P(s), but was statistically inferior when comparing Z(1) and P(p). The polyurethane compliance chamber, therefore, should be redesigned with greater compliance.

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Year:  2005        PMID: 16340369     DOI: 10.1097/01.mat.0000182473.47668.f1

Source DB:  PubMed          Journal:  ASAIO J        ISSN: 1058-2916            Impact factor:   2.872


  7 in total

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Authors:  Rebecca E Schewe; Khalil M Khanafer; Ryan A Orizondo; Keith E Cook
Journal:  Ann Biomed Eng       Date:  2011-10-19       Impact factor: 3.934

2.  Fourteen Day In Vivo Testing of a Compliant Thoracic Artificial Lung.

Authors:  David J Skoog; Joshua R Pohlmann; David S Demos; Christopher N Scipione; Amit Iyengar; Rebecca E Schewe; Ahmed B Suhaib; Kelly L Koch; Keith E Cook
Journal:  ASAIO J       Date:  2017 Sep/Oct       Impact factor: 2.872

3.  Early in vivo experience with the pediatric continuous-flow total artificial heart.

Authors:  Jamshid H Karimov; David J Horvath; Nicole Byram; Gengo Sunagawa; Barry D Kuban; Shengqiang Gao; Raymond Dessoffy; Kiyotaka Fukamachi
Journal:  J Heart Lung Transplant       Date:  2018-03-30       Impact factor: 10.247

4.  Design and in vitro assessment of an improved, low-resistance compliant thoracic artificial lung.

Authors:  Rebecca E Schewe; Khalil M Khanafer; Aarthi Arab; Jeffrey A Mitchell; David J Skoog; Keith E Cook
Journal:  ASAIO J       Date:  2012 Nov-Dec       Impact factor: 2.872

5.  Hemodynamic design requirements for in-series thoracic artificial lung attachment in a model of pulmonary hypertension.

Authors:  Begum Akay; Julie A Foucher; Daniele Camboni; Kelly L Koch; Ayushi Kawatra; Keith E Cook
Journal:  ASAIO J       Date:  2012 Jul-Aug       Impact factor: 2.872

6.  Low-Resistance, Concentric-Gated Pediatric Artificial Lung for End-Stage Lung Failure.

Authors:  Alex J Thompson; Skylar Buchan; Benjamin Carr; Clinton Poling; McKenzie Hayes; Uditha Piyumindri Fernando; Andreas Kaesler; Peter Schlanstein; Felix Hesselmann; Jutta Arens; Joseph A Potkay; Alvaro Rojas-PeÑa; Robert H Bartlett; Ronald B Hirschl
Journal:  ASAIO J       Date:  2020-04       Impact factor: 3.826

7.  Interactive simulator for e-Learning environments: a teaching software for health care professionals.

Authors:  Claudio De Lazzari; Igino Genuini; Domenico M Pisanelli; Alessandra D'Ambrosi; Francesco Fedele
Journal:  Biomed Eng Online       Date:  2014-12-18       Impact factor: 2.819

  7 in total

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