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首页> 外文期刊>Dental Materials Journal >Novel fabrication method for zirconia restorations: Bonding strength of machinable ceramic to zirconia with resin cements
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Novel fabrication method for zirconia restorations: Bonding strength of machinable ceramic to zirconia with resin cements

机译:氧化锆修复体的新型制造方法:可加工陶瓷与氧化锆的粘结强度与树脂水泥的结合

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摘要

A novel method was developed to fabricate all-ceramic restorations which comprised CAD/CAM-fabricated machinable ceramic bonded to CAD/CAM-fabricated zirconia framework using resin cement. The feasibility of this fabrication method was assessed in this study by investigating the bonding strength of a machinable ceramic to zirconia. A machinable ceramic was bonded to a zirconia plate using three kinds of resin cements: ResiCem (RE), Panavia (PA), and Multilink (ML). Conventional porcelain-fused-to-zirconia specimens were also prepared to serve as control. Shear bond strength test (SBT) and Schwickerath crack initiation test (SCT) were carried out. SBT revealed that PA (40.42 MPa) yielded a significantly higher bonding strength than RE (28.01 MPa) and ML (18.89 MPa). SCT revealed that the bonding strengths of test groups using resin cement were significantly higher than those of Control. Notably, the bonding strengths of RE and ML were above 25 MPa even after 10,000 times of thermal cycling —adequately meeting the ISO 9693 standard for metal-ceramic restorations. These results affirmed the feasibility of the novel fabrication method, in that a CAD/CAM-fabricated machinable ceramic is bonded to a CAD/CAM-fabricated zirconia framework using a resin cement.
机译:开发了一种新颖的方法来制造全瓷修复体,包括使用树脂水泥将CAD / CAM制造的可加工陶瓷粘结到CAD / CAM制造的氧化锆骨架上。通过研究可加工陶瓷与氧化锆的结合强度,在本研究中评估了该制造方法的可行性。使用三种树脂胶水将可加工陶瓷粘结到氧化锆板上:ResiCem(RE),Panavia(PA)和Multilink(ML)。还准备了常规的陶瓷熔合氧化锆标本作为对照。进行了剪切粘结强度测试(SBT)和Schwickerath裂纹萌生测试(SCT)。 SBT表明,PA(40.42 MPa)产生的粘结强度明显高于RE(28.01 MPa)和ML(18.89 MPa)。 SCT显示,使用树脂胶粘剂的测试组的粘合强度显着高于对照组。值得注意的是,即使经过10,000次热循环,RE和ML的结合强度仍高于25 MPa,足以满足金属陶瓷修复体的ISO 9693标准。这些结果证实了这种新颖制造方法的可行性,因为使用树脂胶粘剂将CAD / CAM制造的可机加工陶瓷粘结到了CAD / CAM制造的氧化锆骨架上。

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