Home LiteratureArticle Details
PMID: 35142094 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Wet surface wall model for latent heat exchange during evaporation.

International journal for numerical methods in biomedical engineering ·Vol. 38 ·No. 4 ·2022-00-00 ·Pages e3581

Inthavong K, Fletcher DF, Khamooshi M, Vahaji S, Salati H

Abstract

Air conditioning is a dual heat and mass transfer process, and the human nasal cavity achieves this through the mucosal wall surface, which is supplied with an energy source through the sub-epithelial network of capillaries. Computational studies of air conditioning in the nasal cavity have included temperature and humidity, but most studies solved these flow parameters separately, and in some cases, a constant mucosal surface temperature was used. Recent developments demonstrated that both heat and mass transfer need to be modeled. This work expands on existing modeling efforts in accounting for the nasal cavity's dual heat and mass transfer process by introducing a new subwall model, given in the Supplementary Materials. The model was applied to a pipe geometry, and a human nasal cavity was recreated from CT-scans, and six inhalation conditions were studied. The results showed that when the energy transfer from the latent heat of evaporation is included, there is a cooling effect on the mucosal surface temperature.

Keywords
CFD drug delivery nasal cavity nebulizer transient
MeSH Terms
Hot Temperature Humans Humidity Nasal Cavity Nose Temperature
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Inthavong Kiao ORCID
Mechanical and Automotive Engineering, School of Engineering, RMIT University, Bundoora, Victoria, Australia.
Fletcher David F ORCID
School of Chemical and Biomolecular Engineering, The University of Sydney, Sydney, New South Wales, Australia.
Khamooshi Mehrdad ORCID
Mechanical and Automotive Engineering, School of Engineering, RMIT University, Bundoora, Victoria, Australia.
Vahaji Sara ORCID
Mechanical and Automotive Engineering, School of Engineering, RMIT University, Bundoora, Victoria, Australia.
Salati Hana ORCID
Mechanical and Automotive Engineering, School of Engineering, RMIT University, Bundoora, Victoria, Australia.
References (33)
33 references, click to expand
  1. Geometry and airflow dynamics analysis in the nasal cavity during inhalation.
    Clin Biomech (Bristol, Avon). 2019 Jun;66:97-106 PMID: 29074148
  2. A numerical simulation of intranasal air temperature during inspiration.
    Laryngoscope. 2004 Jun;114(6):1037-41 PMID: 15179209
  3. Computational modelling of nasal respiratory flow.
    Comput Methods Biomech Biomed Engin. 2021 Mar;24(4):440-458 PMID: 33175592
  4. A technique to measure the ability of the human nose to warm and humidify air.
    J Appl Physiol (1985). 1999 Jul;87(1):400-6 PMID: 10409601
  5. Perception of better nasal patency correlates with increased mucosal cooling after surgery for nasal obstruction.
    Otolaryngol Head Neck Surg. 2014 Jan;150(1):139-47 PMID: 24154749
  6. Intranasal temperature and humidity profile in patients with nasal septal perforation before and after surgical closure.
    Clin Otolaryngol Allied Sci. 2001 Oct;26(5):433-7 PMID: 11678954
  7. Effects of head tilt on squeeze-bottle nasal irrigation - A computational fluid dynamics study.
    J Biomech. 2021 Jun 23;123:110490 PMID: 34022532
  8. Nasal mucosal temperature during respiration.
    Clin Otolaryngol Allied Sci. 2002 Jun;27(3):135-9 PMID: 12071984
  9. Temperature profile in the nasal cavity.
    Laryngoscope. 2000 Apr;110(4):651-4 PMID: 10764013
  10. Numerical study on the air conditioning characteristics of the human nasal cavity.
    Comput Biol Med. 2017 Jul 1;86:18-30 PMID: 28499215
  11. Assessment of septal deviation effects on nasal air flow: a computational fluid dynamics model.
    Laryngoscope. 2009 Sep;119(9):1730-6 PMID: 19572266
  12. Computational investigation of dust mite allergens in a realistic human nasal cavity.
    Inhal Toxicol. 2019 May;31(6):224-235 PMID: 31431101
  13. Nasal air conditioning in patients before and after septoplasty with bilateral turbinoplasty.
    Laryngoscope. 2006 Jun;116(6):890-4 PMID: 16735882
  14. Mechanics of airflow in the human nasal airways.
    Respir Physiol Neurobiol. 2008 Nov 30;163(1-3):100-10 PMID: 18786659
  15. Wet surface wall model for latent heat exchange during evaporation.
    Int J Numer Method Biomed Eng. 2022 Apr;38(4):e3581 PMID: 35142094
  16. The impact of nasal adhesions on airflow and mucosal cooling - A computational fluid dynamics analysis.
    Respir Physiol Neurobiol. 2021 Nov;293:103719 PMID: 34147672
  17. In silico approaches to respiratory nasal flows: A review.
    J Biomech. 2019 Dec 3;97:109434 PMID: 31711609
  18. Impact of unilateral sinus surgery with resection of the turbinates by means of midfacial degloving on nasal air conditioning.
    Laryngoscope. 2002 Nov;112(11):2062-6 PMID: 12439182
  19. N95 respirator mask breathing leads to excessive carbon dioxide inhalation and reduced heat transfer in a human nasal cavity.
    Phys Fluids (1994). 2021 Aug;33(8):081913 PMID: 34552313
  20. New CFD tools to evaluate nasal airflow.
    Eur Arch Otorhinolaryngol. 2017 Aug;274(8):3121-3128 PMID: 28547013
  21. Heating of air in the nasal airways in patients with chronic sinus disease before and after sinus surgery.
    Clin Otolaryngol Allied Sci. 2001 Feb;26(1):53-8 PMID: 11298169
  22. Physiology and pathophysiology of respiratory mucosa of the nose and the paranasal sinuses.
    GMS Curr Top Otorhinolaryngol Head Neck Surg. 2010;9:Doc07 PMID: 22073111
  23. Air conditioning analysis among human nasal passages with anterior anatomical variations.
    Med Eng Phys. 2018 Jul;57:19-28 PMID: 29706484
  24. Impact of Middle versus Inferior Total Turbinectomy on Nasal Aerodynamics.
    Otolaryngol Head Neck Surg. 2016 Sep;155(3):518-25 PMID: 27165673
  25. Humidity and temperature profile in the nasal cavity.
    Rhinology. 2000 Dec;38(4):167-71 PMID: 11190750
  26. Correlation of Nasal Mucosal Temperature With Subjective Nasal Patency in Healthy Individuals.
    JAMA Facial Plast Surg. 2017 Jan 01;19(1):46-52 PMID: 27918749
  27. Atrophic rhinitis: a CFD study of air conditioning in the nasal cavity.
    J Appl Physiol (1985). 2007 Sep;103(3):1082-92 PMID: 17569762
  28. Nasal air-conditioning after partial turbinectomy: myths versus facts.
    Am J Rhinol Allergy. 2015 Mar-Apr;29(2):e59-62 PMID: 25785745
  29. Dynamic characteristics of heat capacity of the human nasal cavity during a respiratory cycle.
    Respir Physiol Neurobiol. 2021 Aug;290:103674 PMID: 33894344
  30. Nasal air temperature and airflow during respiration in numerical simulation based on multislice computed tomography scan.
    Am J Rhinol. 2006 Mar-Apr;20(2):219-23 PMID: 16686393
  31. Numerical study on the heat-recovery capacity of the human nasal cavity during expiration.
    Comput Biol Med. 2020 Nov;126:103992 PMID: 32987204
  32. The air-conditioning capacity of the human nose.
    Ann Biomed Eng. 2005 Apr;33(4):545-53 PMID: 15909660
  33. Numerical simulation and nasal air-conditioning.
    GMS Curr Top Otorhinolaryngol Head Neck Surg. 2010;9:Doc08 PMID: 22073112
Article Info
Journal
International journal for numerical methods in biomedical engineering
Abbr.
Int J Numer Method Biomed Eng
ISSN
2040-7947
Published
2022-00-00
Epub
2022-00-21
Pages
e3581
Language
English
Region
England
NLM ID
101530293
PMCID
PMC9285617
Subset
IM
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: [email protected]