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      KCI등재 SCIE SCOPUS

      Effects of metal surface grinding at the porcelain try-in stage of fixed dental prostheses

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      https://www.riss.kr/link?id=A103916878

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      다국어 초록 (Multilingual Abstract)

      PURPOSE. This study was to evaluate the effect of grinding of the inner metal surface during the porcelain try-in stage on metal-porcelain bonding considering the maximum temperature and the vibration of samples. MATERIALS AND METHODS. Ninety-one squa...

      PURPOSE. This study was to evaluate the effect of grinding of the inner metal surface during the porcelain try-in stage on metal-porcelain bonding considering the maximum temperature and the vibration of samples.
      MATERIALS AND METHODS. Ninety-one square prism-shaped (1 × 1 × 1.5 mm) nickel-chrome cast frameworks 0.3 mm thick were prepared. Porcelain was applied on two opposite outer axial surfaces of the frameworks. The grinding was performed from the opposite axial sides of the inner metal surfaces with a low-speed handpiece with two types of burs (diamond, tungsten-carbide) under three grinding forces (3.5 N, 7 N, 14 N) and at two durations (5 seconds, 10 seconds). The shear bond strength (SBS) test was performed with universal testing machine. Statistical analyzes were performed at 5% significance level.
      RESULTS. The samples subjected to grinding under 3.5 N showed higher SBS values than those exposed to grinding under 7 N and 14 N (P<.05). SBS values of none of the groups differed from those of the control group (P>.05). The types of bur (P=.965) and the duration (P=.679) did not affect the SBS values. On the other hand, type of bur, force applied, and duration of the grinding affected the maximum temperatures of the samples, whereas the maximum vibration was affected only by the type of bur (P<.05).
      CONCLUSION. Grinding the inner metal surface did not affect the metalporcelain bond strength. Although the grinding affected the maximum temperature and the vibration values of the samples, these did not influence the bonding strength.

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      참고문헌 (Reference)

      1 Isgrò G., "The influence of the veneering porcelain and different surface treatments on the biaxial flexural strength of a heat-pressed ceramic" 90 : 465-473, 2003

      2 Tao J., "The effect of finish line curvature on marginal fit of all-ceramic CAD/CAM crowns and metal-ceramic crowns" 40 : 745-752, 2009

      3 Kourtis SG., "Spectrophotometric evaluation of the optical influence of different metal alloys and porcelains in the metal-ceramic complex" 92 : 477-485, 2004

      4 do Prado RA., "Shear bond strength of dental porcelains to nickel-chromium alloys" 16 : 202-206, 2005

      5 Shillingburg HT Jr., "Preparation design and margin distortion in porcelain-fused-to-metal restorations" 29 : 276-284, 1973

      6 Leinfelder KF., "Porcelain esthetics for the 21st century" 131 : 47S-51S, 2000

      7 de Vasconcellos LG., "Opaque layer firing temperature and aging effect on the flexural strength of ceramic fused to cobalt-chromium alloy" 19 : 471-477, 2010

      8 Ushiwata O., "Marginal fit of nickel-chromium copings before and after internal adjustments with duplicated stone dies and disclosing agent" 83 : 634-643, 2000

      9 Gemalmaz D., "Marginal fit changes during porcelain firing cycles" 73 : 49-54, 1995

      10 Lombardo GH., "Influence of surface treatment on the shear bond strength of ceramics fused to cobalt-chromium" 19 : 103-111, 2010

      1 Isgrò G., "The influence of the veneering porcelain and different surface treatments on the biaxial flexural strength of a heat-pressed ceramic" 90 : 465-473, 2003

      2 Tao J., "The effect of finish line curvature on marginal fit of all-ceramic CAD/CAM crowns and metal-ceramic crowns" 40 : 745-752, 2009

      3 Kourtis SG., "Spectrophotometric evaluation of the optical influence of different metal alloys and porcelains in the metal-ceramic complex" 92 : 477-485, 2004

      4 do Prado RA., "Shear bond strength of dental porcelains to nickel-chromium alloys" 16 : 202-206, 2005

      5 Shillingburg HT Jr., "Preparation design and margin distortion in porcelain-fused-to-metal restorations" 29 : 276-284, 1973

      6 Leinfelder KF., "Porcelain esthetics for the 21st century" 131 : 47S-51S, 2000

      7 de Vasconcellos LG., "Opaque layer firing temperature and aging effect on the flexural strength of ceramic fused to cobalt-chromium alloy" 19 : 471-477, 2010

      8 Ushiwata O., "Marginal fit of nickel-chromium copings before and after internal adjustments with duplicated stone dies and disclosing agent" 83 : 634-643, 2000

      9 Gemalmaz D., "Marginal fit changes during porcelain firing cycles" 73 : 49-54, 1995

      10 Lombardo GH., "Influence of surface treatment on the shear bond strength of ceramics fused to cobalt-chromium" 19 : 103-111, 2010

      11 Song XF., "In vitro rapid intraoral adjustment of porcelain prostheses using a high-speed dental handpiece" 4 : 414-424, 2008

      12 "ISO 9693-1:2012. Dentistry--Compatibility testing-Part 1: Metal-ceramic systems"

      13 Shillingburg HT., "Fundamentals of Fixed Prosthodontics" Quintessence Publishing Co. 455-484, 1997

      14 Papazoglou E., "Evaluation of high-temperature distortion of high-palladium metal-ceramic crowns" 85 : 133-140, 2001

      15 Aladağ A., "Effects of soldering and laser welding on bond strength of ceramic to metal" 105 : 28-34, 2011

      16 Faucher RR., "Distortion related to margin design in porcelain-fused-to-metal restorations" 43 : 149-155, 1980

      17 Hammad IA., "Designs of bond strength tests for metal-ceramic complexes : review of the literature" 75 : 602-608, 1996

      18 Hero H., "Carbon impurities and properties of some palladium alloys for ceramic veneering" 1 : 106-110, 1985

      19 Brackett SE., "An evaluation of porcelain strength and the effect of surface treatment" 61 : 446-451, 1989

      20 Keys LG., "An alternate method of verifying the seating of allceramic restorations" 87 : 411-, 2002

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      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 0.91 0.23 0.75
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.67 0.59 0.57 0.04
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