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Computational fluid dynamics simulation wall model predicting air temperature of the nasal passage for nonhuman primates

Datos Bibliográficos

ID8313883
AutoresFutoshi Mori (0000-0002-3698-2507, Institute for Biomedical Sciences Iwate Medical University Yahaba Iwate Japan, autor de correspondencia), Akihisa Kaneko (0000-0003-3629-1658, Primate Research Institute Kyoto University Inuyama Aichi Japan, autor de correspondencia), Teruo Matsuzawa (Japan Advanced Institute of Science and Technology Nomi Ishikawa Japan, autor de correspondencia), Takeshi Nishimura (0000-0003-3800-2194, Primate Research Institute Kyoto University Inuyama Aichi Japan, autor de correspondencia)
Año2021
Volumen174
Número4
Páginas839-845
Fecha de publicación2021-04-01
Peer ReviewedSí
Open AccessSí
TipoARTICLE
RevistaAmerican Journal of Physical Anthropology (JOURNAL)
Identificadores de la revistaISSN: 0002-9483 • E-ISSN: 1096-8644
EditorialWiley (PUBLISHER • GB)
DOI10.1002/ajpa.24221
PMID33438763
OpenAlexW3120447617
IdiomaEN
Referencias citadas16

OBJECTIVES: Nasal passages adjust the temperature of inhaled air to reach the required body temperature for the lungs. The nasal regions of primates including humans are believed to have experienced anatomical modifications that are adaptive to effective conditioning of the atmospheric air in the habitat for a given species. Measurements of the nasal temperature are required to understand the air-conditioning performance for a given species. Unfortunately, repeated direct measurements within the nasal passage have been technically precluded in most nonhuman primates. MATERIALS AND METHODS: Computational fluid dynamics (CFD) simulation is a potential approach for examining the temperature profile in the nasal passage without any direct measurements. The CFD simulation model mainly comprises a computational model to simulate physiological mechanisms and a wall model to simulate the nasal passage's anatomical and physical properties. We used a computational model developed for humans and examined corrections for the developed wall model based on human properties for predicting its performance in Japanese macaques. RESULTS: This study confirmed that the epithelium layer thickness of the wall model affects the accuracy of the predictions for macaques. A convenient correction of the thickness based on body mass allows us to simulate the actual air temperature profile in macaques' nasal passage. DISCUSSION: The CFD simulations of the wall model corrected with body mass can be applied to other nonhuman primates and mammals. This convenient corrective approach allows us to examine the functional contributions of a specific morphology to the air-conditioning performance without any direct measurements to improve our understanding of primates' functional morphology and physical adaptations to the temperature environment in their habitat

Computational fluid dynamics · Computational model · Computational simulation · Mechanics · Physics · Simulation · Computer Science · Nasal Surgery and Airway Studies · Olfactory and Sensory Function Studies · Sinusitis and nasal conditions

  • Temperature profile of the nasal cavity in Japanese macaques

    Open Access•Takeshi Nishimura, Akihisa Kaneko•Primates•2019

  • Clinal variation of maxillary sinus volume in Japanese macaques ( Macaca fuscata )

    Open Access•Todd C Rae, R A Hill et al.•American Journal of Primatology•2003

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    Open Access•Brian T Shea•American Journal of Physical…•1977

  • Climatic influence on the skeletal nasal aperture

    Open Access•Milford H Wolpoff•American Journal of Physical…•1968

  • Body mass in comparative primatology

    Open Access•Richard J Smith, William L Jungers•Journal of Human Evolution•1997

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