Mathematical model describing air flow dynamics in a turbine spirometer

Diseases of the respiratory system are currently quite common, so the development of new effective ways to diagnose them is relevant. In this paper, we describe a mathematical model developed by us for the interaction of air flows with moving parts of a device for a recently created turbine spiromet...

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Main Authors: Evgeny Alexandrovitch Kiselev, Alexey Vladimirovitch Maksimov, Sergey Dmitrievitch Kurgalin, Sergey Alaxeevitch Zuev
Format: Article
Language:English
Published: Ivannikov Institute for System Programming of the Russian Academy of Sciences 2019-04-01
Series:Труды Института системного программирования РАН
Subjects:
Online Access:https://ispranproceedings.elpub.ru/jour/article/view/1145
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spelling doaj-37e1afa6fcb944038ae93db5e4f9d1b92020-11-25T00:49:13Zeng Ivannikov Institute for System Programming of the Russian Academy of SciencesТруды Института системного программирования РАН2079-81562220-64262019-04-0131110511410.15514/ISPRAS-2019-31(1)-71143Mathematical model describing air flow dynamics in a turbine spirometerEvgeny Alexandrovitch Kiselev0Alexey Vladimirovitch Maksimov1Sergey Dmitrievitch Kurgalin2Sergey Alaxeevitch Zuev3Воронежский государственный университетВоронежский государственный университетВоронежский государственный университетВоронежский государственный университетDiseases of the respiratory system are currently quite common, so the development of new effective ways to diagnose them is relevant. In this paper, we describe a mathematical model developed by us for the interaction of air flows with moving parts of a device for a recently created turbine spirometer of a new type. It has a number of technical features that must be taken into account when modeling. Among others, this is quite substantial inertia of the turbine and low friction. The model is based on the moment equation and contains several empirical parameters. Since the friction in the system is small, the main relations are considered in the linear approximation. Experimental verification of the model was carried out in two modes of operation of the spirometer. Firstly, the inertial motion of the turbine after turning off the external air source was investigated. Secondly, the dependence of the angular velocity of rotation of the turbine on the speed of an external constant air flow was analyzed. The calculations showed that in this two modes, the developed mathematical model describes the experimental results quite well. Also in this paper a simple method is given for determining empirical parameters at the device calibration stage. It is based on the use of the least squares method and does not require the involvement of large computational powers. This is an important circumstance, since the spirometer under investigation is intended for use not only in specialized medical institutions, but also in home conditions. On the base of the relations of the developed mathematical model, a numerical method is proposed for finding the velocity of the incoming air flow. This allows, basing on the readings of the device, to obtain clinically relevant information about the state of the respiratory system.https://ispranproceedings.elpub.ru/jour/article/view/1145медицинская диагностикаспирометрматематическая модельразработка медицинских приборовтурбинный спирометрорганы дыханияпортативный медицинский прибординамика воздушных потоковдатчик
collection DOAJ
language English
format Article
sources DOAJ
author Evgeny Alexandrovitch Kiselev
Alexey Vladimirovitch Maksimov
Sergey Dmitrievitch Kurgalin
Sergey Alaxeevitch Zuev
spellingShingle Evgeny Alexandrovitch Kiselev
Alexey Vladimirovitch Maksimov
Sergey Dmitrievitch Kurgalin
Sergey Alaxeevitch Zuev
Mathematical model describing air flow dynamics in a turbine spirometer
Труды Института системного программирования РАН
медицинская диагностика
спирометр
математическая модель
разработка медицинских приборов
турбинный спирометр
органы дыхания
портативный медицинский прибор
динамика воздушных потоков
датчик
author_facet Evgeny Alexandrovitch Kiselev
Alexey Vladimirovitch Maksimov
Sergey Dmitrievitch Kurgalin
Sergey Alaxeevitch Zuev
author_sort Evgeny Alexandrovitch Kiselev
title Mathematical model describing air flow dynamics in a turbine spirometer
title_short Mathematical model describing air flow dynamics in a turbine spirometer
title_full Mathematical model describing air flow dynamics in a turbine spirometer
title_fullStr Mathematical model describing air flow dynamics in a turbine spirometer
title_full_unstemmed Mathematical model describing air flow dynamics in a turbine spirometer
title_sort mathematical model describing air flow dynamics in a turbine spirometer
publisher Ivannikov Institute for System Programming of the Russian Academy of Sciences
series Труды Института системного программирования РАН
issn 2079-8156
2220-6426
publishDate 2019-04-01
description Diseases of the respiratory system are currently quite common, so the development of new effective ways to diagnose them is relevant. In this paper, we describe a mathematical model developed by us for the interaction of air flows with moving parts of a device for a recently created turbine spirometer of a new type. It has a number of technical features that must be taken into account when modeling. Among others, this is quite substantial inertia of the turbine and low friction. The model is based on the moment equation and contains several empirical parameters. Since the friction in the system is small, the main relations are considered in the linear approximation. Experimental verification of the model was carried out in two modes of operation of the spirometer. Firstly, the inertial motion of the turbine after turning off the external air source was investigated. Secondly, the dependence of the angular velocity of rotation of the turbine on the speed of an external constant air flow was analyzed. The calculations showed that in this two modes, the developed mathematical model describes the experimental results quite well. Also in this paper a simple method is given for determining empirical parameters at the device calibration stage. It is based on the use of the least squares method and does not require the involvement of large computational powers. This is an important circumstance, since the spirometer under investigation is intended for use not only in specialized medical institutions, but also in home conditions. On the base of the relations of the developed mathematical model, a numerical method is proposed for finding the velocity of the incoming air flow. This allows, basing on the readings of the device, to obtain clinically relevant information about the state of the respiratory system.
topic медицинская диагностика
спирометр
математическая модель
разработка медицинских приборов
турбинный спирометр
органы дыхания
портативный медицинский прибор
динамика воздушных потоков
датчик
url https://ispranproceedings.elpub.ru/jour/article/view/1145
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AT alexeyvladimirovitchmaksimov mathematicalmodeldescribingairflowdynamicsinaturbinespirometer
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AT sergeyalaxeevitchzuev mathematicalmodeldescribingairflowdynamicsinaturbinespirometer
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