No2(1) 2018
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DOI 10.37219/2528-8253-2018-2-43 |
Naumenko A, Krynychko L, Rezmaq KF Mohammed
Air exchange in the maxillary sinus in the postoperative period after
maxillary sinusotomy through the inner and middle nasal airway |
Naumenko Alexander N.
Bogomolets National Medical University, Kiev, Ukraine
Vice-rector for scientific and pedagogical and medical work
Doctor of Medical Sciences, Professor
E-mail: naumenko16@ukr.net
Krinichko Lilia R.
Bogomolets National Medical University, Kiev, Ukraine
Department of Otorhinolaryngology, Assistant of the Department
PhD
Rezmak K.F. Mohammed
Bogomolets National Medical University, Kiev, Ukraine
Department of Otorhinolaryngology, graduate student |
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Abstract
There are many computer models that describe the airflow in various
anatomical variants and the pathology of the nasal cavity and paranasal
sinuses. The data that describe the Reynolds number and airflow velocity in
the different section of the nasal cavity of the patients with cyst of the
maxillary sinus are very different. The results of operation of the
maxillary sinusotomy through the middle nasal airway are disjointed and
contradictory. There is also a little information of aerodynamics in the
odontogenic pathology of the maxillary sinus.
Purpose: Calculate airflow velocity in various sections of the nasal
cavity, and air exchange in the maxillary sinus in patients with cysts of
the maxillary sinus in the postoperative period after endonasalmaxillary
sinusotomy through the lower and middle nasal airway.
Material and methods: 112 patients with maxillary sinus cyst were
examined. Patients were divided into three clinical groups. The first group,
41 people, included patients who had removed the cysts of the maxillary
sinus through the lower nasal airway, as well as intact structures of the
middle nasal passage remained. The second group included 38 patients who had
removed the maxillary sinus cyst through the middle nasal airway. In the
third group, were selected 33 patients, who had not been diagnosed with
nasal and nasal sinus pathology, but they were examined by an ENT specialist
before implantation of the teeth.
Computer tomography of nasal sinuses was performed for all patients. The
Planmeca Tomography, manufactured in Finland, was used, with the further
processing of information using the software Romexis Viewer.
Using the Romexis Viewer software and MeshLabit was measured the size of the
anatomical structures of the nasal cavity and nasal sinuses, the calculation
of air flow velocity at the airways of the nasal cavity, the calculation of
the Reynolds number. To calculate the parameters of external respiration,
all patients were examined for external respiration using a mask spirometer.
Statistical processing of the obtained data was carried out using SPSS
software 13.
Results: The rate of air flow that passes through the nasal cavity on
the inhalation and exhalation in the postoperative period in patients with
cysts of the maxillary sinus that has undergone endonazal maxillary
sinusotomy through the lower nasal airway, is statistically no different
from those patients who had no pathology of the nasal cavity and nasal
sinuses.
The volume of air exchange in the case of removal maxillary cyst through the
lower nasal airway does not statistically differ from the volume of air
exchange in patients without pathology of the nasal cavity and nasal
sinuses. |
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Keywords
maxillary sinus, airflow. |
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