Using a polyurea resin-bonded mounted wheel, dental resin composites and porcelain are polished precisely.

IF 1 4区 医学 Q4 ENGINEERING, BIOMEDICAL
Hideaki Sato, Yutaka Kameyama, Ryokichi Shimpo, Yuanyuan Yang, Satoshi Komasa
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引用次数: 0

Abstract

BackgroundThe success of dental restorations depends on achieving adequate surface integrity. However, grinding and polishing are generally ineffective because of the special physical and chemical compositions and properties of the composites. Polyurea resin is an elastomer with high elasticity, abrasion resistance, heat resistance, and toughness. When it is used as a bond, grinding wheels with high grain grip strength can be fabricated.ObjectiveWe fabricated a mounted wheel with a polyurea resin as the bond and used it to polish a composite resin and porcelain under clinical polishing conditions. The effects of the approach on the polished surface roughness and morphology were evaluated with respect to the type of mounted wheel, initial surface roughness, abrasive particle size, and polishing time.MethodsThis study fabricates a mounted wheel with polyurea resin as the bond and uses it to polish composite resin and porcelain under clinical polishing conditions. The effects of the approach on the polished surface roughness and morphology are evaluated against the type of mounted wheel, initial surface roughness, abrasive particle size, and polishing time.ResultsAmong single-crystal diamond, siliconcon carbide (GC), and alumina (WA) abrasive grains, diamond abrasive grains produced the best finish for most tested resin composites. However, WA abrasive grains are effective for polishing Estenia (it has the highest filler content). The polishing performance of the porcelain varied with the initial surface roughness and abrasive particle diameter.ConclusionThis study provides guidance for improving and developing mounted wheels for clinical applications.

使用聚脲树脂粘接安装轮,牙科树脂复合材料和瓷器被精确抛光。
背景:牙体修复的成功取决于获得足够的表面完整性。然而,由于复合材料特殊的物理化学成分和性能,研磨和抛光通常是无效的。聚脲树脂是一种具有高弹性、耐磨性、耐热性和韧性的弹性体。当它用作结合剂时,可以制造出高抓粒强度的砂轮。目的制备一种以聚脲树脂为粘结剂的安装轮,在临床抛光条件下对复合树脂和瓷进行抛光。根据安装的砂轮类型、初始表面粗糙度、磨料粒度和抛光时间,评估了该方法对抛光表面粗糙度和形貌的影响。方法以聚脲树脂为粘结剂,制作一种安装轮,在临床抛光条件下对复合树脂和陶瓷进行抛光。该方法对抛光表面粗糙度和形貌的影响是根据安装的砂轮类型、初始表面粗糙度、磨料粒度和抛光时间来评估的。结果在单晶金刚石、碳化硅(GC)和氧化铝(WA)磨粒中,金刚石磨粒对大多数树脂复合材料的光洁度最好。然而,WA磨料颗粒对抛光Estenia是有效的(它具有最高的填料含量)。陶瓷的抛光性能随初始表面粗糙度和磨粒直径的变化而变化。结论本研究为改进和发展临床应用的安装轮提供了指导。
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来源期刊
Bio-medical materials and engineering
Bio-medical materials and engineering 工程技术-材料科学:生物材料
CiteScore
1.80
自引率
0.00%
发文量
73
审稿时长
6 months
期刊介绍: The aim of Bio-Medical Materials and Engineering is to promote the welfare of humans and to help them keep healthy. This international journal is an interdisciplinary journal that publishes original research papers, review articles and brief notes on materials and engineering for biological and medical systems. Articles in this peer-reviewed journal cover a wide range of topics, including, but not limited to: Engineering as applied to improving diagnosis, therapy, and prevention of disease and injury, and better substitutes for damaged or disabled human organs; Studies of biomaterial interactions with the human body, bio-compatibility, interfacial and interaction problems; Biomechanical behavior under biological and/or medical conditions; Mechanical and biological properties of membrane biomaterials; Cellular and tissue engineering, physiological, biophysical, biochemical bioengineering aspects; Implant failure fields and degradation of implants. Biomimetics engineering and materials including system analysis as supporter for aged people and as rehabilitation; Bioengineering and materials technology as applied to the decontamination against environmental problems; Biosensors, bioreactors, bioprocess instrumentation and control system; Application to food engineering; Standardization problems on biomaterials and related products; Assessment of reliability and safety of biomedical materials and man-machine systems; and Product liability of biomaterials and related products.
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