Literature DB >> 18645355

Microchannel technologies for artificial lungs: (2) screen-filled wide rectangular channels.

M C Kung1, J-K Lee, H H Kung, L F Mockros.   

Abstract

Artificial lungs with blood-side channels on a 10-40 microm scale would be characterized, similar to the natural lungs, by tens of thousands to hundreds of millions parallel blood channels, short blood paths, low pressure drops, and low blood primes. A major challenge for developing such devices is the requirement that the multitude of channels must be uniform from channel to channel and along each channel. One possible strategy for developing microchannel artificial lungs is to fill broad rectangular channels with micro scale screens that can provide uniform support and stability. The present work explores the effectiveness of 40 microm screen-filled blood-side channels and, as a comparison, 82 microm screen-filled channels. Small concept-devices, consisting of a single 69 mm wide and 3 or 6 mm long channel, were tested using 30% hematocrit blood and oxygen or air on the gas side. The measured oxygen fluxes in the devices were in the range of 4 to 9 x 10(-7) moles/(min x cm(2)), with the latter close to the theoretical membrane limit. The pressure drop was in the range of 1-6 mm Hg. Extrapolating the data to a device designed to process 4 L/min suggests a required blood prime of only 35 ml.

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Year:  2008        PMID: 18645355      PMCID: PMC2749603          DOI: 10.1097/MAT.0b013e31817ed9c8

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


  7 in total

1.  Introduction of a new oxygenator including a tight fiber for long-term ECMO in infants.

Authors:  Katharina Kind; Nils Reiss; Hermann Josef Knobl; Ute Blanz; Reiner Körfer
Journal:  ASAIO J       Date:  2006 Mar-Apr       Impact factor: 2.872

2.  Microchannel technologies for artificial lungs: (1) theory.

Authors:  J K Lee; H H Kung; L F Mockros
Journal:  ASAIO J       Date:  2008 Jul-Aug       Impact factor: 2.872

3.  Prediction of oxygen transport rates in blood flowing in large capillaries.

Authors:  P K Nair; J D Hellums; J S Olson
Journal:  Microvasc Res       Date:  1989-11       Impact factor: 3.514

4.  Compact cross-flow tubular oxygenators.

Authors:  L F Mockros; R Leonard
Journal:  Trans Am Soc Artif Intern Organs       Date:  1985

5.  Development of an implantable oxygenator with cross-flow pump.

Authors:  Yuichi Asakawa; Akio Funakubo; Kazuyoshi Fukunaga; Ichiro Taga; Tetsuya Higami; Tsuyoshi Kawamura; Yasuhiro Fukui
Journal:  ASAIO J       Date:  2006 May-Jun       Impact factor: 2.872

6.  Use of a mathematical model to predict oxygen transfer rates in hollow fiber membrane oxygenators.

Authors:  S N Vaslef; L F Mockros; R W Anderson; R J Leonard
Journal:  ASAIO J       Date:  1994 Oct-Dec       Impact factor: 2.872

7.  Intravascular blood oxygenation using hollow fibers in a disk-shaped configuration: experimental evaluation of the relationship between porosity and performance.

Authors:  Giorgio F M Cattaneo; Helmut Reul; Thomas Schmitz-Rode; Ulrich Steinseifer
Journal:  ASAIO J       Date:  2006 Mar-Apr       Impact factor: 2.872

  7 in total
  7 in total

1.  Microchannel technologies for artificial lungs: (3) open rectangular channels.

Authors:  J-K Lee; M C Kung; H H Kung; L F Mockros
Journal:  ASAIO J       Date:  2008 Jul-Aug       Impact factor: 2.872

2.  Stem cells and cell therapies in lung biology and diseases: conference report.

Authors:  Daniel J Weiss; Jason H T Bates; Thomas Gilbert; W Conrad Liles; Carolyn Lutzko; Jay Rajagopal; Darwin Prockop
Journal:  Ann Am Thorac Soc       Date:  2013-10

3.  Steel reinforced composite silicone membranes and its integration to microfluidic oxygenators for high performance gas exchange.

Authors:  Harpreet Matharoo; Mohammadhossein Dabaghi; Niels Rochow; Gerhard Fusch; Neda Saraei; Mohammed Tauhiduzzaman; Stephen Veldhuis; John Brash; Christoph Fusch; P Ravi Selvaganapathy
Journal:  Biomicrofluidics       Date:  2018-01-11       Impact factor: 2.800

4.  Multilayer Scaling of a Biomimetic Microfluidic Oxygenator.

Authors:  Else M Vedula; Brett C Isenberg; Jose Santos; WeiXuan Lai; Diana J Lewis; David Sutherland; Teryn R Roberts; George T Harea; Christian Wells; Bryan Teece; Joseph Urban; Thomas Risoleo; Derek Solt; Sahar Leazer; Kevin Chung; Sivaprasad Sukavaneshvar; Andriy I Batchinsky; Jeffrey T Borenstein
Journal:  ASAIO J       Date:  2022-01-12       Impact factor: 3.826

Review 5.  Advances in extracorporeal membrane oxygenator design for artificial placenta technology.

Authors:  David G Blauvelt; Emily N Abada; Peter Oishi; Shuvo Roy
Journal:  Artif Organs       Date:  2020-11-04       Impact factor: 3.094

6.  A Pumpless Microfluidic Neonatal Lung Assist Device for Support of Preterm Neonates in Respiratory Distress.

Authors:  Mohammadhossein Dabaghi; Niels Rochow; Neda Saraei; Gerhard Fusch; Shelley Monkman; Kevin Da; Alireza Shahin-Shamsabadi; John L Brash; Dragos Predescu; Kathleen Delaney; Christoph Fusch; P Ravi Selvaganapathy
Journal:  Adv Sci (Weinh)       Date:  2020-09-29       Impact factor: 16.806

Review 7.  The Roles of Membrane Technology in Artificial Organs: Current Challenges and Perspectives.

Authors:  Bao Tran Duy Nguyen; Hai Yen Nguyen Thi; Bich Phuong Nguyen Thi; Dong-Ku Kang; Jeong F Kim
Journal:  Membranes (Basel)       Date:  2021-03-28
  7 in total

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