Nasal airflow comparison in neonates, infant and adult nasal cavities using computational fluid dynamics

被引:19
作者
Corda, John Valerian [1 ]
Shenoy, B. Satish [1 ]
Ahmad, Kamarul Arifin [2 ]
Lewis, Leslie [3 ]
Prakashini, K. [4 ]
Khader, S. M. Abdul [5 ]
Zuber, Mohammad [1 ]
机构
[1] Manipal Acad Higher Educ, Manipal Inst Technol, Dept Aeronaut & Automobile Engn, Manipal 576104, India
[2] Univ Putra Malaysia, Dept Aerosp Engn, Jalan Univ 1 Serdang, Seri Kembangan 43400, Selangor, Malaysia
[3] Kasturba Med Coll & Hosp, Dept Paediat, Manipal 576104, India
[4] Kasturba Med Coll & Hosp, Dept Radio Diag, Manipal 576104, India
[5] Manipal Acad Higher Educ, Manipal Inst Technol, Dept Mech & Mfg Engn, Manipal 576104, India
关键词
Nasal airflow; Neonatal airway; Infant; Adult; CFD; GCI; Polyhedral mesh; NUMERICAL-SIMULATION; HUMAN NOSE; DEPOSITION; RESISTANCE; PARTICLES; PATTERNS;
D O I
10.1016/j.cmpb.2021.106538
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
Background and objective: Neonates are preferential nasal breathers up to 3 months of age. The nasal anatomy in neonates and infants is at developing stages whereas the adult nasal cavities are fully grown which implies that the study of airflow dynamics in the neonates and infants are significant. In the present study, the nasal airways of the neonate, infant and adult are anatomically compared and their airflow patterns are investigated. Methods: Computational Fluid Dynamics (CFD) approach is used to simulate the airflow in a neonate, an infant and an adult in sedentary breathing conditions. The healthy CT scans are segmented using MIMICS 21.0 (Materialise, Ann arbor, MI). The patient-specific 3D airway models are analyzed for low Reynolds number flow using ANSYS FLUENT 2020 R2. The applicability of the Grid Convergence Index (GCI) for polyhedral mesh adopted in this work is also verified. Results: This study shows that the inferior meatus of neonates accounted for only 15% of the total airflow. This was in contrast to the infants and adults who experienced 49 and 31% of airflow at the inferior meatus region. Superior meatus experienced 25% of total flow which is more than normal for the neonate. The highest velocity of 1.8, 2.6 and 3.7 m/s was observed at the nasal valve region for neonates, infants and adults, respectively. The anterior portion of the nasal cavity experienced maximum wall shear stress with average values of 0.48, 0.25 and 0.58 Pa for the neonates, infants and adults. Conclusions: The neonates have an underdeveloped nasal cavity which significantly affects their airway distribution. The absence of inferior meatus in the neonates has limited the flow through the inferior regions and resulted in uneven flow distribution. (C) 2021 Elsevier B.V. All rights reserved.
引用
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页数:12
相关论文
共 45 条
[11]   Mechanics of airflow in the human nasal airways [J].
Doorly, D. J. ;
Taylor, D. J. ;
Schroter, R. C. .
RESPIRATORY PHYSIOLOGY & NEUROBIOLOGY, 2008, 163 (1-3) :100-110
[12]   ANALYSIS OF AIR-FLOW PATTERNS IN THE HUMAN NOSE [J].
ELAD, D ;
LIEBENTHAL, R ;
WENIG, BL ;
EINAV, S .
MEDICAL & BIOLOGICAL ENGINEERING & COMPUTING, 1993, 31 (06) :585-592
[13]   Atrophic rhinitis: a CFD study of air conditioning in the nasal cavity [J].
Garcia, Guilherme J. M. ;
Bailie, Neil ;
Martins, Dario A. ;
Kimbell, Julia S. .
JOURNAL OF APPLIED PHYSIOLOGY, 2007, 103 (03) :1082-1092
[14]   Computational fluid dynamics analysis of the upper airway after rapid maxillary expansion: a case report [J].
Ghoneima, Ahmed ;
AlBarakati, Sahar ;
Jiang, Feifei ;
Kula, Katherine ;
Wasfy, Tamer .
PROGRESS IN ORTHODONTICS, 2015, 16
[15]   Increased Work of Breathing due to Tracheomalacia in Neonates [J].
Gunatilaka, Chamindu C. ;
Higano, Nara S. ;
Hysinger, Erik B. ;
Gandhi, Deep B. ;
Fleck, Robert J. ;
Hahn, Andrew D. ;
Fain, Sean B. ;
Woods, Jason C. ;
Bates, Alister J. .
ANNALS OF THE AMERICAN THORACIC SOCIETY, 2020, 17 (10) :1247-1256
[16]   NASAL CONDUCTANCE AND EFFECTIVE AIRWAY DIAMETER [J].
HEY, EN ;
PRICE, JF .
JOURNAL OF PHYSIOLOGY-LONDON, 1982, 330 (SEP) :429-437
[17]   MATHEMATICAL-MODEL FOR THE POSTNATAL-GROWTH OF THE HUMAN-LUNG [J].
HOFMANN, W .
RESPIRATION PHYSIOLOGY, 1982, 49 (01) :115-129
[18]   Geometry and airflow dynamics analysis in the nasal cavity during inhalation [J].
Inthavong, Kiao ;
Ma, Jiawei ;
Shang, Yidan ;
Dong, Jingliang ;
Chetty, Annicka S. R. ;
Tu, Jiyuan ;
Frank-Ito, Dennis .
CLINICAL BIOMECHANICS, 2019, 66 :97-106
[19]   The effect of nasal shape on the thermal conditioning of inhaled air: Using clinical tomographic data to build a large-scale statistical shape model [J].
Keustermans, William ;
Huysmans, Toon ;
Schmelzer, Bert ;
Sijbers, Jan ;
Dirckx, Joris J. J. .
COMPUTERS IN BIOLOGY AND MEDICINE, 2020, 117
[20]   Numerical simulation of airflow in the human nasal cavity [J].
Keyhani, K ;
Scherer, PW ;
Mozell, MM .
JOURNAL OF BIOMECHANICAL ENGINEERING-TRANSACTIONS OF THE ASME, 1995, 117 (04) :429-441