Control of positive end-expiratory pressure
The positive end-expiratory pressure (PEEP) for the mechanical ventilation of small animals is frequently obtained with water seals or by using ventilators developed for human use. An alternative mechanism is the use of an on-off expiratory valve closing at the moment when the alveolar pressure is e...
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Veröffentlicht in: | Biomedical engineering online 2010-07, Vol.9, p.36 |
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creator | Giannella-Neto, Antonio da Motta Ribeiro, Gabriel C Santos, Edil L Soares, João HN Leão Nunes, Marcelo V Jandre, Frederico C |
description | The positive end-expiratory pressure (PEEP) for the mechanical ventilation of small animals is frequently obtained with water seals or by using ventilators developed for human use. An alternative mechanism is the use of an on-off expiratory valve closing at the moment when the alveolar pressure is equal to the target PEEP. In this paper, a novel PEEP controller (PEEP-new) and the PEEP system of a commercial small-animal ventilator, both based on switching an on-off valve, are evaluated. The proposed PEEP controller is a discrete integrator monitoring the error between the target PEEP and the airways opening pressure prior to the onset of an inspiratory cycle. In vitro as well as in vivo experiments with rats were carried out and the PEEP accuracy, settling time and under/overshoot were considered as a measure of performance. The commercial PEEP controller did not pass the tests since it ignores the airways resistive pressure drop, resulting in a PEEP 5 cmH.sub.2 O greater than the target in most conditions. The PEEP-new presented steady-state errors smaller than 0.5 cmH.sub.2 O, with settling times below 10 s and under/overshoot smaller than 2 cmH.sub.2 O. The PEEP-new presented acceptable performance, considering accuracy and temporal response. This novel PEEP generator may prove useful in many applications for small animal ventilators. |
doi_str_mv | 10.1186/1475-925X-9-36 |
format | Article |
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An alternative mechanism is the use of an on-off expiratory valve closing at the moment when the alveolar pressure is equal to the target PEEP. In this paper, a novel PEEP controller (PEEP-new) and the PEEP system of a commercial small-animal ventilator, both based on switching an on-off valve, are evaluated. The proposed PEEP controller is a discrete integrator monitoring the error between the target PEEP and the airways opening pressure prior to the onset of an inspiratory cycle. In vitro as well as in vivo experiments with rats were carried out and the PEEP accuracy, settling time and under/overshoot were considered as a measure of performance. The commercial PEEP controller did not pass the tests since it ignores the airways resistive pressure drop, resulting in a PEEP 5 cmH.sub.2 O greater than the target in most conditions. The PEEP-new presented steady-state errors smaller than 0.5 cmH.sub.2 O, with settling times below 10 s and under/overshoot smaller than 2 cmH.sub.2 O. The PEEP-new presented acceptable performance, considering accuracy and temporal response. 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An alternative mechanism is the use of an on-off expiratory valve closing at the moment when the alveolar pressure is equal to the target PEEP. In this paper, a novel PEEP controller (PEEP-new) and the PEEP system of a commercial small-animal ventilator, both based on switching an on-off valve, are evaluated. The proposed PEEP controller is a discrete integrator monitoring the error between the target PEEP and the airways opening pressure prior to the onset of an inspiratory cycle. In vitro as well as in vivo experiments with rats were carried out and the PEEP accuracy, settling time and under/overshoot were considered as a measure of performance. The commercial PEEP controller did not pass the tests since it ignores the airways resistive pressure drop, resulting in a PEEP 5 cmH.sub.2 O greater than the target in most conditions. The PEEP-new presented steady-state errors smaller than 0.5 cmH.sub.2 O, with settling times below 10 s and under/overshoot smaller than 2 cmH.sub.2 O. The PEEP-new presented acceptable performance, considering accuracy and temporal response. This novel PEEP generator may prove useful in many applications for small animal ventilators.</description><subject>Control</subject><subject>Control systems</subject><subject>Positive pressure respiration</subject><subject>Ventilators</subject><issn>1475-925X</issn><issn>1475-925X</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2010</creationdate><recordtype>article</recordtype><recordid>eNpjYBAzNNAzNLQw0zc0MTfVtTQyjdC11DU2Y2LghAuwILE5GLiKi7MMDIwMDMwsORm0nfPzSorycxTy0xQK8oszSzLLUhVS81J0UysKMosSS_KLKhUKilKLi0uLUnkYWNMSc4pTeaE0N4Omm2uIs4duemJOanxmXjLQqNSKkvTE0uLieM_goHhHI2MTMxNzMwtzY1LUAgC-XDwq</recordid><startdate>20100730</startdate><enddate>20100730</enddate><creator>Giannella-Neto, Antonio</creator><creator>da Motta Ribeiro, Gabriel C</creator><creator>Santos, Edil L</creator><creator>Soares, João HN</creator><creator>Leão Nunes, Marcelo V</creator><creator>Jandre, Frederico C</creator><general>BioMed Central Ltd</general><scope>ISR</scope></search><sort><creationdate>20100730</creationdate><title>Control of positive end-expiratory pressure</title><author>Giannella-Neto, Antonio ; da Motta Ribeiro, Gabriel C ; Santos, Edil L ; Soares, João HN ; Leão Nunes, Marcelo V ; Jandre, Frederico C</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-gale_incontextgauss_ISR_A2346476873</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2010</creationdate><topic>Control</topic><topic>Control systems</topic><topic>Positive pressure respiration</topic><topic>Ventilators</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Giannella-Neto, Antonio</creatorcontrib><creatorcontrib>da Motta Ribeiro, Gabriel C</creatorcontrib><creatorcontrib>Santos, Edil L</creatorcontrib><creatorcontrib>Soares, João HN</creatorcontrib><creatorcontrib>Leão Nunes, Marcelo V</creatorcontrib><creatorcontrib>Jandre, Frederico C</creatorcontrib><collection>Gale In Context: Science</collection><jtitle>Biomedical engineering online</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Giannella-Neto, Antonio</au><au>da Motta Ribeiro, Gabriel C</au><au>Santos, Edil L</au><au>Soares, João HN</au><au>Leão Nunes, Marcelo V</au><au>Jandre, Frederico C</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Control of positive end-expiratory pressure</atitle><jtitle>Biomedical engineering online</jtitle><date>2010-07-30</date><risdate>2010</risdate><volume>9</volume><spage>36</spage><pages>36-</pages><issn>1475-925X</issn><eissn>1475-925X</eissn><abstract>The positive end-expiratory pressure (PEEP) for the mechanical ventilation of small animals is frequently obtained with water seals or by using ventilators developed for human use. An alternative mechanism is the use of an on-off expiratory valve closing at the moment when the alveolar pressure is equal to the target PEEP. In this paper, a novel PEEP controller (PEEP-new) and the PEEP system of a commercial small-animal ventilator, both based on switching an on-off valve, are evaluated. The proposed PEEP controller is a discrete integrator monitoring the error between the target PEEP and the airways opening pressure prior to the onset of an inspiratory cycle. In vitro as well as in vivo experiments with rats were carried out and the PEEP accuracy, settling time and under/overshoot were considered as a measure of performance. The commercial PEEP controller did not pass the tests since it ignores the airways resistive pressure drop, resulting in a PEEP 5 cmH.sub.2 O greater than the target in most conditions. The PEEP-new presented steady-state errors smaller than 0.5 cmH.sub.2 O, with settling times below 10 s and under/overshoot smaller than 2 cmH.sub.2 O. 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source | DOAJ Directory of Open Access Journals; PubMed Central Open Access; Springer Nature OA Free Journals; EZB-FREE-00999 freely available EZB journals; PubMed Central; SpringerLink Journals - AutoHoldings |
subjects | Control Control systems Positive pressure respiration Ventilators |
title | Control of positive end-expiratory pressure |
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