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PMID: 33438763 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

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

American journal of physical anthropology ·Vol. 174 ·No. 4 ·2021-00-00 ·Pages 839-845

Mori F, Kaneko A, Matsuzawa T, Nishimura T

Abstract

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. 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. 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. 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.

Keywords
Macaca body mass computational fluid dynamics nasal cavity temperature
MeSH Terms
Air Movements Animals Computer Simulation Female Humans Hydrodynamics Macaca fuscata Nasal Cavity/diagnostic imaging,physiology Temperature Tomography, X-Ray Computed
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Mori Futoshi ORCID
Institute for Biomedical Sciences, Iwate Medical University, Yahaba, Iwate, Japan.
Kaneko Akihisa
Primate Research Institute, Kyoto University, Inuyama, Aichi, Japan.
Matsuzawa Teruo
Japan Advanced Institute of Science and Technology, Nomi, Ishikawa, Japan.
Nishimura Takeshi ORCID
Primate Research Institute, Kyoto University, Inuyama, Aichi, Japan.
Article Info
Journal
American journal of physical anthropology
Abbr.
Am J Phys Anthropol
ISSN
1096-8644
Published
2021-00-00
Epub
2021-00-13
Pages
839-845
Language
English
Region
United States
NLM ID
0400654
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