The Influence of Microwave Sintering Process on the Adaptation of CAD/CAM Zirconia Core

마이크로 웨이브 소결 과정이 CAD/CAM 지르코니아 코아의 적합도에 미치는 영향

  • Kim, Keun Bae (Department of prosthodontics, college of Dentistry, Yonsei University) ;
  • Kim, Jee Hwan (Department of prosthodontics, college of Dentistry, Yonsei University) ;
  • Lee, Keun-Woo (Department of prosthodontics, college of Dentistry, Yonsei University)
  • 김근배 (연세대학교 치과대학 치과보철학교실) ;
  • 김지환 (연세대학교 치과대학 치과보철학교실) ;
  • 이근우 (연세대학교 치과대학 치과보철학교실)
  • Received : 2009.04.05
  • Accepted : 2009.06.25
  • Published : 2009.06.30

Abstract

The purpose of this research was to examine the fitness of zirconia cores that were made by different sintering methods; generic electricity furnace and microwave furnace. Firstly, 12 cores for each group were made by using each different sintering process and attached them to a metal die with silicon. The internal and marginal gap of sintered zirconia was measured by using Skyscan 1076 micro-CT, then it was reorganized by CT-An software. To each samples, we extracted B-L image, M-D image of cutting side, and cross-sectional side of tooth long axis and calculated the mean value of marginal, axial, and occlusal gap each side. Results: 1. The mean marginal gap of sintered zirconia was $36.20{\mu}m$ for EVE, $47.67{\mu}m$ for LAV, $52.47{\mu}m$ for DEN, and $54.63{\mu}m$ for CER. 2. For the axial wall, the research showed the largest value of $63.49{\mu}m$ for EVE, but there were no statistical significance. 3. In related to the occlusal internal measurement, DEN showed the smallest value ($77.06{\mu}m$), EVE and CER showed significantly high value. From this study, it is suggested that CAD/CAM zirconia core which was made in the process of microwave sintering has clinically acceptable values in marginal and internal gap.

본 연구의 목적은 전통적인 소결 방법과 마이크로 웨이브 소결 방법에 의해 제작된 지르코니아 코아의 내부 및 변연 적합도를 알아보는 것이다. 본 실험은 기존의 소결로를 이용하는 $3M^{(R)}$의 Lava(LAV), $Kavo^{(R)}$사의 Everest(EVE), $Cerasys^{(R)}$ CAD/CAM 시스템(CER)과 마이크로웨이브 소결로를 이용하는 Dent. $solution^{(R)}$사의 CAD/CAM 시스템(DEN)에서 시스템별로 12개씩의 코아를 제작하고 실리콘 접착제를 이용하여 금속 다이에 부착시켰다. $Skyscan^{(R)}$ 1076 미세 단층 촬영기를 이용해 각각의 시편을 촬영한 후 재구성하였다. 각 시편에 대해 B-L상, M-D상 절단면 및 치아 장축에 대한 횡단면을 구해내고 각각의 단면에 대해 변연 간격, 축면 간격, 교합면 간격을 측정하였다. 실험에 대한 결과는 다음과 같다. 1. 변연 간격은 EVE가 $36.20{\mu}m$로 가장 작았고, LAV는 $47.67{\mu}m$, DEN는 $52.47{\mu}m$, CER은 $54.63{\mu}m$를 나타내었다. 2. 축면 간격은 EVE가 $63.49{\mu}m$로 가장 큰 값을 나타내었으나 네군간에는 유의차는 없었다. 3. 교합면 간격은 DEN이 $77.06{\mu}m$으로 가장 작은 값을 나타내었으며, EVE와 CER은 $100{\mu}m$를 넘는 값으로 다른 두군과 유의차를 보였다. 본 연구에서 마이크로웨이브 소결을 통해 제작된 CAD/CAM 지르코니아 코아는 임상적으로 허용할 만한 변연 간격 및 축면 간격, 교합면 간격을 보여 주었다.

Keywords

Acknowledgement

Supported by : 연세대학교

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