Processing math: 100%
Matematicheskaya Biologiya i Bioinformatika
RUS  ENG    JOURNALS   PEOPLE   ORGANISATIONS   CONFERENCES   SEMINARS   VIDEO LIBRARY   PACKAGE AMSBIB  
General information
Latest issue
Archive
Impact factor

Search papers
Search references

RSS
Latest issue
Current issues
Archive issues
What is RSS



Mat. Biolog. Bioinform.:
Year:
Volume:
Issue:
Page:
Find






Personal entry:
Login:
Password:
Save password
Enter
Forgotten password?
Register


Matematicheskaya Biologiya i Bioinformatika, 2021, Volume 16, Issue 2, Pages 349–366
DOI: https://doi.org/10.17537/2021.16.349
(Mi mbb471)
 

This article is cited in 7 scientific papers (total in 7 papers)

Mathematical Modeling

Mathematical model of airflow and solid particles transport in the human nasal cavity

P. V. Trusovab, N. V. Zaitsevaa, M. Yu. Cinkera, A. V. Nekrasovab

a Federal Scientific Center for Medical and Preventive Health Risk Management Technologies, Perm, Russian Federation
b Perm National Research Polytechnic University, Perm, Russian Federation
References:
Abstract: As part of the mathematical model of the human respiratory system, a submodel is considered for the study of the non-steady airflow with solid particles (suspended particulate matter (PM) / dust particles) and the deposition of particles of various sizes in the human nasal cavity. It is assumed that the nasal cavity is divided by the bone-cartilaginous septum into two symmetrical (relative to the nasal septum) parts; the average geometry of the right part of the human nasal cavity is considered. The inhaled air is considered as a multiphase mixture of homogeneous single-component gas and solid dust particles. The Eulerian-Lagrangian approach to modeling the motion of a multiphase mixture is used: a viscous liquid model is used to describe the motion of the carrier gas phase; the carried phase (dust particles) is modeled as separate inclusions of various sizes. The process of heating the inhaled air due to its contact with the walls is also taken into account. The features of the unsteady flow of a multiphase air mixture with dust particles were obtained using Ansys CFX for several scenarios. It has been noted that when studying the airflow in the nasal cavity, it is necessary to take into account the presence of turbulence, for which it is proposed to use the k-ω model. The velocity fields of inhaled air in the nasal cavity have been obtained; presented temperature distributions in the nasal cavity at different time points; made estimates of air heating at different temperatures of inhaled air; gave estimates of the proportion of deposited particles in the nasal cavity depending on the particle size for real machine-building production; presented trajectories of movement of suspended particles. Thus, it is shown that more than 99.7% of particles with a diameter of more than 10 microns deposit in the human nasal cavity; as the particle diameter and mass decrease, the proportion of deposited particles decreases. Suspended particles with a size of less than 2.5 microns almost do not deposit in the nasal cavity. They can penetrate deeper into the lower airways and lungs of a person with the inhaled air and, having fibrogenic and toxic effect, can cause diseases. The results obtained are in good agreement with the results of individual studies performed by other scientists. Further development of the model involves studying airflow in the human lungs and modeling the formation of diseases caused by the harmful effects of environmental factors (including dust particles) entering the human body by inhalation.
Key words: mathematical modeling, human respiratory system, nasal cavity, gas dynamics, suspended particles, dust particles, particulate matter, PM10, PM2.5, deposition, air heating.
Received 09.08.2021, 05.10.2021, Published 25.10.2021
Bibliographic databases:
Document Type: Article
Language: Russian
Citation: P. V. Trusov, N. V. Zaitseva, M. Yu. Cinker, A. V. Nekrasova, “Mathematical model of airflow and solid particles transport in the human nasal cavity”, Mat. Biolog. Bioinform., 16:2 (2021), 349–366
Citation in format AMSBIB
\Bibitem{TruZaiCin21}
\by P.~V.~Trusov, N.~V.~Zaitseva, M.~Yu.~Cinker, A.~V.~Nekrasova
\paper Mathematical model of airflow and solid particles transport in the human nasal cavity
\jour Mat. Biolog. Bioinform.
\yr 2021
\vol 16
\issue 2
\pages 349--366
\mathnet{http://mi.mathnet.ru/mbb471}
\crossref{https://doi.org/10.17537/2021.16.349}
\elib{https://elibrary.ru/item.asp?id=47918040}
Linking options:
  • https://www.mathnet.ru/eng/mbb471
  • https://www.mathnet.ru/eng/mbb/v16/i2/p349
    Translation
    This publication is cited in the following 7 articles:
    1. Petr Valentinovich Trusov, Nina Vladimirovna Zaitseva, Mikhail Yurevich Tsinker, Vladislav Vladimirovich Nurislamov, “Modelirovanie techeniya vozdukha v uprugo-deformiruemoi poristoi srede, approksimiruyuschei legkie cheloveka: struktura modeli, ee osnovnye uravneniya i razreshayuschie sootnosheniya”, Comp. Contin. Mech., 17:2 (2024), 219  crossref
    2. Petr Valentinovich Trusov, Nina Vladimirovna Zaitseva, Mikhail Yurevich Tsinker, Vladislav Vladimirovich Nurislamov, “Modelirovanie techeniya vozdukha v uprugo-deformiruemoi poristoi srede, approksimiruyuschei legkie cheloveka: algoritm realizatsii i analiz rezultatov primeneniya modeli”, Comp. Contin. Mech., 17:3 (2024), 329  crossref
    3. Peter V. Trusov, Nina V. Zaitseva, Mikhail Yu. Tsinker, Artur I. Kuchukov, INTERNATIONAL CONFERENCE ON CONTEMPORARY CHALLENGES IN SCIENCE, ENGINEERING AND ITS APPLICATIONS – Part II: IC3SEA 2023, 3246, INTERNATIONAL CONFERENCE ON CONTEMPORARY CHALLENGES IN SCIENCE, ENGINEERING AND ITS APPLICATIONS – Part II: IC3SEA 2023, 2024, 060004  crossref
    4. Peter V. Trusov, Nina V. Zaitseva, Mikhail Yu. Tsinker, Polina D. Svintsova, INTERNATIONAL CONFERENCE ON CONTEMPORARY CHALLENGES IN SCIENCE, ENGINEERING AND ITS APPLICATIONS – Part II: IC3SEA 2023, 3246, INTERNATIONAL CONFERENCE ON CONTEMPORARY CHALLENGES IN SCIENCE, ENGINEERING AND ITS APPLICATIONS – Part II: IC3SEA 2023, 2024, 060005  crossref
    5. Nina V. Zaitseva, Svetlana V. Kleyn, Kristina V. Chetverkina, Alena M. Andrishunas, Mikhail Yu. Tsinker, “On the safe levels of micro-sized particles PM1.0 in ambient air”, Hygiene and sanitation, 103:11 (2024), 1434  crossref
    6. P. V. Trusov, N. V. Zaitseva, M. Yu. Tsinker, A. I. Kuchukov, “Chislennoe issledovanie nestatsionarnogo techeniya zapylennogo vozdukha i osedaniya pylevykh chastits razlichnykh razmerov v nizhnikh dykhatelnykh putyakh cheloveka”, Matem. biologiya i bioinform., 18:2 (2023), 347–366  mathnet  crossref
    7. Nina V. Zaitseva, Dmitry A. Kiryanov, Svetlana V. Kleyn, Mikhail Yu. Tsinker, Alena M. Andrishunas, “Distribution of micro-sized range solid particles in the human airways: field experiment”, Hygiene and sanitation, 102:5 (2023), 412  crossref
    Citing articles in Google Scholar: Russian citations, English citations
    Related articles in Google Scholar: Russian articles, English articles
    Statistics & downloads:
    Abstract page:133
    Full-text PDF :47
    References:18
     
      Contact us:
     Terms of Use  Registration to the website  Logotypes © Steklov Mathematical Institute RAS, 2025