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An evaluation of temperature stability and resistance in neonatal ventilator circuits

BACKGROUND: Gas conditioning minimizes complications associated with invasive ventilation of neonates. Poorly conditioned gas contributes to humidity deficit, facilitates condensate pools, and contributes to safety events. The specific aim was to objectively quantify the temperature drop across the...

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Autores principales: Ruppert, Jennifer A., McNinch, Neil L., Volsko, Teresa A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Canadian Society of Respiratory Therapists 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7845534/
https://www.ncbi.nlm.nih.gov/pubmed/33532559
http://dx.doi.org/10.29390/cjrt-2020-042
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author Ruppert, Jennifer A.
McNinch, Neil L.
Volsko, Teresa A.
author_facet Ruppert, Jennifer A.
McNinch, Neil L.
Volsko, Teresa A.
author_sort Ruppert, Jennifer A.
collection PubMed
description BACKGROUND: Gas conditioning minimizes complications associated with invasive ventilation of neonates. Poorly conditioned gas contributes to humidity deficit, facilitates condensate pools, and contributes to safety events. The specific aim was to objectively quantify the temperature drop across the unheated portion of a neonatal circuit and the impact condensation has to resistance to flow in the ventilator circuit. METHODS: Ventilator circuits and filters were obtained, assembled according to manufacturer recommendations, and operational verification procedures were performed prior to data collection. A neonatal test lung was connected to each Servo-I ventilator with the following settings: pressure control IMV mode; inspiratory pressure: 14 cm H(2)O to achieve an exhaled tidal volume of 6.0 mL; PEEP: 5 cm H(2)O; pressure support: 5 cm H(2)O, F(I)O(2:) 0.21; set frequency 40/min; and inspiratory time: 0.4 s. The Fisher and Paykel MR850 and ChonchaTherm Neptune heaters were set at a temperature of 40°C. To evaluate both systems under similar conditions, the ChonchaTherm Neptune heater humidity control was set to midline. Heaters were turned on simultaneously and given 1 h to equilibrate. Readings for room temperature, airway temperature at the patient connection, airway resistance, exhaled tidal volume, and direct observation of circuit condensation and (or) pooling were recorded hourly for a 48-h period. Summary statistics were calculated for the variables of interest. RESULTS: Mean (±SD) air temperature was 26.3°C (±1.4) for the Fisher & Paykel MR850 system and 26.2°C (±1.5), for the ChonchaTherm Neptune system. Mean (±SD) airway resistance was 229.3 cm H(2)O/L/s (±81.0) for the Fisher & Paykel system and 196.2 cm H(2)O/L/s (±39.4) for the ChonchaTherm Neptune system. Mean (±SD) tidal volume for the Fisher & Paykel MR850 system was 6.5 mL (±0.4), and for the ChonchaTherm Neptune system was 7.2 mL (±0.6). CONCLUSION: Circuit condensate increased tidal volume delivery and airway resistance. Temperature at the patient connection was lower than the temperature monitored by the system 12 inches distally, which can negatively impact gas conditioning.
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spelling pubmed-78455342021-02-01 An evaluation of temperature stability and resistance in neonatal ventilator circuits Ruppert, Jennifer A. McNinch, Neil L. Volsko, Teresa A. Can J Respir Ther Research Article BACKGROUND: Gas conditioning minimizes complications associated with invasive ventilation of neonates. Poorly conditioned gas contributes to humidity deficit, facilitates condensate pools, and contributes to safety events. The specific aim was to objectively quantify the temperature drop across the unheated portion of a neonatal circuit and the impact condensation has to resistance to flow in the ventilator circuit. METHODS: Ventilator circuits and filters were obtained, assembled according to manufacturer recommendations, and operational verification procedures were performed prior to data collection. A neonatal test lung was connected to each Servo-I ventilator with the following settings: pressure control IMV mode; inspiratory pressure: 14 cm H(2)O to achieve an exhaled tidal volume of 6.0 mL; PEEP: 5 cm H(2)O; pressure support: 5 cm H(2)O, F(I)O(2:) 0.21; set frequency 40/min; and inspiratory time: 0.4 s. The Fisher and Paykel MR850 and ChonchaTherm Neptune heaters were set at a temperature of 40°C. To evaluate both systems under similar conditions, the ChonchaTherm Neptune heater humidity control was set to midline. Heaters were turned on simultaneously and given 1 h to equilibrate. Readings for room temperature, airway temperature at the patient connection, airway resistance, exhaled tidal volume, and direct observation of circuit condensation and (or) pooling were recorded hourly for a 48-h period. Summary statistics were calculated for the variables of interest. RESULTS: Mean (±SD) air temperature was 26.3°C (±1.4) for the Fisher & Paykel MR850 system and 26.2°C (±1.5), for the ChonchaTherm Neptune system. Mean (±SD) airway resistance was 229.3 cm H(2)O/L/s (±81.0) for the Fisher & Paykel system and 196.2 cm H(2)O/L/s (±39.4) for the ChonchaTherm Neptune system. Mean (±SD) tidal volume for the Fisher & Paykel MR850 system was 6.5 mL (±0.4), and for the ChonchaTherm Neptune system was 7.2 mL (±0.6). CONCLUSION: Circuit condensate increased tidal volume delivery and airway resistance. Temperature at the patient connection was lower than the temperature monitored by the system 12 inches distally, which can negatively impact gas conditioning. Canadian Society of Respiratory Therapists 2021-01-29 /pmc/articles/PMC7845534/ /pubmed/33532559 http://dx.doi.org/10.29390/cjrt-2020-042 Text en http://creativecommons.org/licenses/by-nc/4.0/ This open-access article is distributed under the terms of the Creative Commons Attribution Non-Commercial License (CC BY-NC) (http://creativecommons.org/licenses/by-nc/4.0/), which permits reuse, distribution and reproduction of the article, provided that the original work is properly cited and the reuse is restricted to noncommercial purposes. For commercial reuse, contact editor@csrt.com
spellingShingle Research Article
Ruppert, Jennifer A.
McNinch, Neil L.
Volsko, Teresa A.
An evaluation of temperature stability and resistance in neonatal ventilator circuits
title An evaluation of temperature stability and resistance in neonatal ventilator circuits
title_full An evaluation of temperature stability and resistance in neonatal ventilator circuits
title_fullStr An evaluation of temperature stability and resistance in neonatal ventilator circuits
title_full_unstemmed An evaluation of temperature stability and resistance in neonatal ventilator circuits
title_short An evaluation of temperature stability and resistance in neonatal ventilator circuits
title_sort evaluation of temperature stability and resistance in neonatal ventilator circuits
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7845534/
https://www.ncbi.nlm.nih.gov/pubmed/33532559
http://dx.doi.org/10.29390/cjrt-2020-042
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