Literature DB >> 27729703

Effects of Purge-Flow Rate on Microbubble Capture in Radial Arterial-Line Filters.

Daniel P Herbst1.   

Abstract

The process of microbubble filtration from blood is complex and highly dependent on the forces of flow and buoyancy. To protect the patient from air emboli, arterial-line filters commonly use a micropore screen, a large volume housing with purpose-built shape, and a purge port to trap, separate, and remove circulating microbubbles. Although it has been proposed that an insufficient buoyancy force renders the purge port ineffective at removing microbubbles smaller than 500 μm, this research attempts to investigate the purge flow of an arterial-line filter to better understand the microbubble removal function in a typical radial filter design. As its primary objective, the study aims to determine the effect of purge-flow rate on bubble capture using air bolus injections from a syringe pump with 22-gauge needle and Doppler ultrasound bubble detection. The measureable bubble size generated in the test circuit ranged between 30 and 500 μm, while purge flow was varied between .1 and .5 L/min for testing. Statistical analysis of the test data was handled using a repeated measures design with significance set at p < .05 level. Outcomes demonstrated that higher purge flows yielded higher bubble counts, but the effect of purge-flow rate on bubble capture decreased as bubble size increased. Results also showed that purge flow from the test filter was capable of capturing all bubble sizes being generated over the entire flow range tested, and confirms utility of the purge port in removing microbubbles smaller than 500 μm. By analyzing bubble counts in the purge flow of a typical radial-filter design, this study demonstrates that currently available micropore filter technology is capable of removing the size range of bubbles that commonly pass through modern pump-oxygenator systems and should continue to be considered during extracorporeal circulation as a measure to improve patient safety.

Entities:  

Keywords:  Doppler ultrasound; arterial-line; bubble counter; cardiopulmonary bypass equipment; filtration; microbubble; micropore; patient safety

Mesh:

Substances:

Year:  2016        PMID: 27729703      PMCID: PMC5056680     

Source DB:  PubMed          Journal:  J Extra Corpor Technol        ISSN: 0022-1058


  17 in total

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Authors:  J Lin; N M Dogal; R K Mathis; F Qiu; A Kunselman; A Ündar
Journal:  Perfusion       Date:  2012-02-15       Impact factor: 1.972

3.  Evaluation of Quadrox-i adult hollow fiber oxygenator with integrated arterial filter.

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Journal:  J Extra Corpor Technol       Date:  2010-06

4.  Air Transmission Comparison of the Affinity Fusion Oxygenator with an Integrated Arterial Filter to the Affinity NT Oxygenator with a Separate Arterial Filter.

Authors:  Kieron C Potger; Darryl McMillan; Mark Ambrose
Journal:  J Extra Corpor Technol       Date:  2014-09

5.  Clinical evaluation of the Sorin Synthesis oxygenator with integrated arterial filter.

Authors:  Gerard J Myers; Ken Gardiner; Steve N Ditmore; Wilfred J Swyer; Chris Squires; David R Johnstone; Clarie V Power; Lance B Mitchell; Jan E Ditmore; Bill Cook
Journal:  J Extra Corpor Technol       Date:  2005-06

6.  Gaseous microemboli: do we finally start to comprehend how to remove them?

Authors:  Filip De Somer
Journal:  J Extra Corpor Technol       Date:  2014-03

7.  Randomized trial of the Terumo Capiox FX05 oxygenator with integral arterial filter versus Terumo Capiox Baby RX05 and Terumo Capiox AF02 arterial filter in infants undergoing cardiopulmonary bypass.

Authors:  Mark M Nuszkowski; Nina Deutsch; Richard A Jonas; David Zurakowski; Erin Montague; David W Holt
Journal:  J Extra Corpor Technol       Date:  2011-12

8.  Extracorporeal bubbles: a word of caution.

Authors:  Filip M J J De Somer; Maria R Vetrano; Jeroen P A J Van Beeck; Guido J Van Nooten
Journal:  Interact Cardiovasc Thorac Surg       Date:  2010-03-02

9.  Clinical gaseous microemboli assessment of an oxygenator with integral arterial filter in the pediatric population.

Authors:  Thomas J Preston; Daniel Gomez; Vincent F Olshove; Alistair Phillips; Mark Galantowicz
Journal:  J Extra Corpor Technol       Date:  2009-12

10.  Evaluation of air handling in a new generation neonatal oxygenator with integral arterial filter.

Authors:  D Gomez; T J Preston; V F Olshove; A B Phillips; M E Galantowicz
Journal:  Perfusion       Date:  2009-03       Impact factor: 1.972

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  2 in total

1.  Application of Micropore Filter Technology: Exploring the Blood Flow Path in Arterial-Line Filters and Its Effect on Bubble Trapping Functions.

Authors:  Daniel P Herbst
Journal:  J Extra Corpor Technol       Date:  2017-03

2.  To Purge or Not to Purge.

Authors:  Juan D V Hugo; Alexander Yeung; Patrick W Weerwind
Journal:  J Extra Corpor Technol       Date:  2020-03
  2 in total

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