Computational fluid dynamics simulation to compare large volume irrigation and continuous spraying during nasal irrigation

被引:18
|
作者
de Gabory, Ludovic [1 ,2 ,3 ]
Kerimian, Melodie [1 ,3 ]
Baux, Yannick [4 ]
Boisson, Nicolas [4 ]
Bordenave, Laurence [2 ,3 ,5 ]
机构
[1] Univ Hosp Bordeaux, Ctr Hosp Univ, Hop Pellegrin, Ear Nose & Throat ENT Dept, Bordeaux, France
[2] Univ Hosp Bordeaux, CIC 14 01, IT, Bordeaux, France
[3] Univ Bordeaux, Bordeaux, France
[4] OptiFluides, Computat Fluid Dynam Unit, Villeurbanne, France
[5] INSERM, U1026, Bioingn Tissulaire, Bordeaux, France
关键词
computational fluid dynamics; computer modeling for nasal irrigation; nasal irrigation; nasal douches; nasal spray; chronic rhinosinusitis; RHEOLOGIC PROPERTIES; SINUS IRRIGATIONS; MUCUS; DIMENSIONS; POSITION; RHINITIS; NOSE;
D O I
10.1002/alr.22458
中图分类号
R76 [耳鼻咽喉科学];
学科分类号
100213 ;
摘要
Background Nasal irrigation is now widely recognized as a treatment for chronic rhinosinusitis and during the postoperative period. However, there are no guidelines for performing irrigation. This study used computational fluid dynamics (CFD) simulation objective physical parameters to optimize and increase the efficiency of nasal irrigation and to compare large-volume, manual, and gravity pressure irrigation vs small-volume continuous spraying. Methods A 3-dimensional (3D) sinonasal model was constructed from a healthy adult high-resolution computed tomography (CT) scan. The 3D nasal model was constructed using a tetrahedral and hex-dominant mesh grid with TGRID (TM) 16 (ANSYS Inc., Villeurbanne, France) software. A structured hex mesh was created inside the domain using the Hexcore meshing method. The final mesh had a total of 9.6 x 10(6) cells with an average size of 0.29 mm(3), or an average volume of 2.42 x 10(-2) mm(3). Navier-Stokes equations were resolved with the standard k - epsilon model. Results Large-volume irrigation (15 mL/s) covered all zones (136 to 310 cm(2)) rapidly with strong shear stress and prolonged contact time (310 mPa 3.26 seconds for gravity mode and 280 mPa 3.35 seconds for manual pressure mode). Continuous spraying (3 mL/second) covered all areas (76 to 310 cm(2)) but with far less volume, more slowly, with low shear stress (50 mPa), and with shorter contact time (1.84 seconds). The surface wetted by time in contact was 135.4, 113.9, and 46.6 cm(2) for gravity, manual pressure mode, and continuous spraying, respectively. Conclusion CFD simulation visualizes the circulation of water during nasal irrigation and makes it possible to determine objective parameters to decide which mode of irrigation may be used.
引用
收藏
页码:41 / 48
页数:8
相关论文
共 50 条
  • [31] Evaluation of needle movement effect on root canal irrigation using a computational fluid dynamics model
    Shanshan Hu
    Lunliang Duan
    Qianbing Wan
    Jian Wang
    BioMedical Engineering OnLine, 18
  • [32] Evaluation of needle movement effect on root canal irrigation using a computational fluid dynamics model
    Hu, Shanshan
    Duan, Lunliang
    Wan, Qianbing
    Wang, Jian
    BIOMEDICAL ENGINEERING ONLINE, 2019, 18 (1)
  • [33] Irrigation of human prepared root canal - ex vivo based computational fluid dynamics analysis
    Snjaric, Damir
    Carija, Zoran
    Braut, Alen
    Halaji, Adelaida
    Kovacevic, Maja
    Kuis, Davor
    CROATIAN MEDICAL JOURNAL, 2012, 53 (05) : 470 - 479
  • [34] Computational fluid dynamics simulation of a jet crystallizer for continuous crystallization of lovastatin
    Zarei, Mohammad
    Norouzi, Hamid Reza
    Sahlodin, Ali M.
    SCIENTIFIC REPORTS, 2024, 14 (01) : 907
  • [35] Computational fluid dynamics simulation of a jet crystallizer for continuous crystallization of lovastatin
    Mohammad Zarei
    Hamid Reza Norouzi
    Ali M. Sahlodin
    Scientific Reports, 14
  • [36] Neti pot irrigation volume filling simulation using anatomically accurate in-vivo nasal airway geometry
    Salati, Hana
    Bartley, Jim
    Yazdi, Sina G.
    Jermy, Mark
    White, David E.
    RESPIRATORY PHYSIOLOGY & NEUROBIOLOGY, 2021, 284
  • [37] Irrigation dynamics associated with positive pressure, apical negative pressure and passive ultrasonic irrigations: A computational fluid dynamics analysis
    Chen, Jose Enrique
    Nurbakhsh, Babak
    Layton, Gillian
    Bussmann, Markus
    Kishen, Anil
    AUSTRALIAN ENDODONTIC JOURNAL, 2014, 40 (02) : 54 - 60
  • [38] An Atomization Model of Air Spraying Using the Volume-of-Fluid Method and Large Eddy Simulation
    Chen, Yan
    Chen, Shiming
    Chen, Wenzhuo
    Hu, Jun
    Jiang, Junze
    COATINGS, 2021, 11 (11)
  • [39] Effect of Nasal Obstruction on Continuous Positive Airway Pressure Treatment: Computational Fluid Dynamics Analyses
    Wakayama, Tadashi
    Suzuki, Masaaki
    Tanuma, Tadashi
    PLOS ONE, 2016, 11 (03):
  • [40] Computational fluid dynamics analysis of conventional irrigation and the combination with adjuvant suction cannulas in human molars with isthmus communication
    Zaldivar, Jose M. R.
    Lorono, Gaizka
    Jimenez-Octavio, Jesus R.
    Dorado, Saul
    Arias, Ana
    ODONTOLOGY, 2024,