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      마이크로 기포를 포함한 근관 세척 유동 형태의 수치해석 평가 = Numerical Evaluation of Flow Pattern for Root Canal Irrigation Including Microbubbles

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      https://www.riss.kr/link?id=A108790980

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      다국어 초록 (Multilingual Abstract)

      This study has the initial purpose of pursuing the efficiency of endodontic treatment by applying microbubbles to a NaOCl cleaning solution. The effects of average apical pressure and wall shear stress were found to determine the cleaning quality of the root canal. Using a G-30 needle and a flow rate of 0.26 ml/s, met acceptance criteria in apical pressure. In the straight root canal shape, the side-vent type enhanced the smear layer removal area more effectively attributed to the wall shear stress. In curved root canals, the flat open type was beneficial in generating wall shear stress relative to the curvature of the curved canal. In the fluidity of the cleaning solution according to the bubble dissolution, a slight change appeared in the average apical pressure. Due to the G-30 needle's small size in bubble flow, it is imperative to adopt a new Reynolds number when applying microbubbles.
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      This study has the initial purpose of pursuing the efficiency of endodontic treatment by applying microbubbles to a NaOCl cleaning solution. The effects of average apical pressure and wall shear stress were found to determine the cleaning quality of t...

      This study has the initial purpose of pursuing the efficiency of endodontic treatment by applying microbubbles to a NaOCl cleaning solution. The effects of average apical pressure and wall shear stress were found to determine the cleaning quality of the root canal. Using a G-30 needle and a flow rate of 0.26 ml/s, met acceptance criteria in apical pressure. In the straight root canal shape, the side-vent type enhanced the smear layer removal area more effectively attributed to the wall shear stress. In curved root canals, the flat open type was beneficial in generating wall shear stress relative to the curvature of the curved canal. In the fluidity of the cleaning solution according to the bubble dissolution, a slight change appeared in the average apical pressure. Due to the G-30 needle's small size in bubble flow, it is imperative to adopt a new Reynolds number when applying microbubbles.

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      참고문헌 (Reference)

      1 성길환, "치아 근관 세척용 마이크로 기포 세정 시스템 개발 및 성능평가" 한국가시화정보학회 14 (14): 40-45, 2016

      2 남승우 ; 이훈상 ; 성재용, "초음파 가진에 의한 마이크로 기포 표면의 형상 진동 측정" 대한기계학회 43 (43): 591-598, 2019

      3 문호진 ; 홍찬의, "근관확대 및 세척 주사바늘의 근관 내 위치가 치근단 3 mm 부위의 근관 세정에 미치는 영향" 대한치과보존학회 37 (37): 24-28, 2012

      4 C. Boutsioukis, "The effect of apical preparation size on irrigant flow in root canals evaluated using an unsteady Computational Fluid Dynamics model" Wiley 43 (43): 874-881, 2010

      5 Lei Liu, "Numerical investigation of irrigant flow characteristics in curved root canals with computational fluid dynamics method" Informa UK Limited 14 (14): 989-1001, 2020

      6 Li, P., "Numerical Investigation of Root Canal Irrigation Adopting Innovative Needles with Dimple and Protrusion" 15 (15): 43-50, 2013

      7 Markus Haapasalo, "Irrigation in Endodontics" Elsevier BV 54 (54): 291-312, 2010

      8 Na Zhou, "Influence of needle working length and root canal curvature on irrigation: a computational fluid dynamics analysis based on a real tooth" Springer Science and Business Media LLC 22 (22): 179-, 2022

      9 Yim, M. Y., "Healthcoach, To Save and Preserve as much as Possible ‘Natural Teeth’ that Cannot be Replaced, Healtip"

      10 Mário Rito Pereira, "Experimental validation of a computational fluid dynamics model using micro‐particle image velocimetry of the irrigation flow in confluent canals" Wiley 55 (55): 1394-1403, 2022

      1 성길환, "치아 근관 세척용 마이크로 기포 세정 시스템 개발 및 성능평가" 한국가시화정보학회 14 (14): 40-45, 2016

      2 남승우 ; 이훈상 ; 성재용, "초음파 가진에 의한 마이크로 기포 표면의 형상 진동 측정" 대한기계학회 43 (43): 591-598, 2019

      3 문호진 ; 홍찬의, "근관확대 및 세척 주사바늘의 근관 내 위치가 치근단 3 mm 부위의 근관 세정에 미치는 영향" 대한치과보존학회 37 (37): 24-28, 2012

      4 C. Boutsioukis, "The effect of apical preparation size on irrigant flow in root canals evaluated using an unsteady Computational Fluid Dynamics model" Wiley 43 (43): 874-881, 2010

      5 Lei Liu, "Numerical investigation of irrigant flow characteristics in curved root canals with computational fluid dynamics method" Informa UK Limited 14 (14): 989-1001, 2020

      6 Li, P., "Numerical Investigation of Root Canal Irrigation Adopting Innovative Needles with Dimple and Protrusion" 15 (15): 43-50, 2013

      7 Markus Haapasalo, "Irrigation in Endodontics" Elsevier BV 54 (54): 291-312, 2010

      8 Na Zhou, "Influence of needle working length and root canal curvature on irrigation: a computational fluid dynamics analysis based on a real tooth" Springer Science and Business Media LLC 22 (22): 179-, 2022

      9 Yim, M. Y., "Healthcoach, To Save and Preserve as much as Possible ‘Natural Teeth’ that Cannot be Replaced, Healtip"

      10 Mário Rito Pereira, "Experimental validation of a computational fluid dynamics model using micro‐particle image velocimetry of the irrigation flow in confluent canals" Wiley 55 (55): 1394-1403, 2022

      11 Shanshan Hu, "Evaluation of needle movement effect on root canal irrigation using a computational fluid dynamics model" Springer Science and Business Media LLC 18 (18): 2019

      12 Mingzhou Yu, "Effect of inflow temperature on root canal irrigation: A computational fluid dynamics study" AIP Publishing 32 (32): 2020

      13 Selin Bulgu, "Computational Investigation of the Tip Effects of Various Root Canal Needles on Irrigation Performance" AVES YAYINCILIK A.Ş. 1 (1): 30-37, 2021

      14 Lee, I. H., "Clinical Insight, Irrigation, Emerging as the Key to Success in Root Canal Treatment"

      15 Beachside Complete Dental Care, "Anatomy of Teeth"

      16 Wai-Sze Chan, "Advancing Nitinol: From heat treatment to surface functionalization for nickel–titanium (NiTi) instruments in endodontics" Elsevier BV 22 : 91-111, 2023

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