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首页> 外文期刊>The Journal of Advanced Prosthodontics >In vitro evaluation of the bond strength between various ceramics and cobalt-chromium alloy fabricated by selective laser sintering
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In vitro evaluation of the bond strength between various ceramics and cobalt-chromium alloy fabricated by selective laser sintering

机译:选择性激光烧结制备的各种陶瓷与钴铬合金之间结合强度的体外评估

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摘要

PURPOSE This study aimed to present the clinical applicability of restorations fabricated by a new method, by comparing the bond strength of between ceramic powder with different coefficient of thermal expansion and alloys fabricated by Selective laser sintering (SLS). MATERIALS AND METHODS Fifty Co-Cr alloy specimens (25.0 × 3.0 × 0.5 mm) were prepared by SLS and fired with the ceramic (8.0 × 3.0 × 0.5 mm) (ISO 9693:1999). For comparison, ceramics with different coefficient of thermal expansion were used. The bond strength was measured by three-point bending testing and surfaces were observed with FE-SEM. Results were analyzed with a one-way ANOVA (α=.05). RESULTS The mean values of Duceram Kiss (61.18 ± 6.86 MPa), Vita VM13 (60.30 ± 7.14 MPa), Ceramco 3 (58.87 ± 5.33 MPa), Noritake EX-3 (55.86 ± 7.53 MPa), and Vintage MP (55.15 ± 7.53 MPa) were found. No significant difference was observed between the bond strengths of the various metal-ceramics. The surfaces of the specimens possessed minute gaps between the additive manufactured layers. CONCLUSION All the five powders have bond strengths higher than the required 25 MPa minimum (ISO 9693); therefore, various powders can be applied to metal structures fabricated by SLS.
机译:目的本研究旨在通过比较具有不同热膨胀系数的陶瓷粉末与通过选择性激光烧结(SLS)制造的合金之间的结合强度,来展示通过一种新方法制造的修复体的临床适用性。材料与方法用SLS制备了50个Co-Cr合金样品(25.0×3.0×0.5 mm),并用陶瓷(8.0×3.0×0.5 mm)进行了烧制(ISO 9693:1999)。为了进行比较,使用了具有不同热膨胀系数的陶瓷。通过三点弯曲试验测量粘合强度,并用FE-SEM观察表面。用单向方差分析(α= .05)分析结果。结果Duceram Kiss(61.18±6.86 MPa),Vita VM13(60.30±7.14 MPa),Ceramco 3(58.87±5.33 MPa),Noritake EX-3(55.86±7.53 MPa)和Vintage MP(55.15±7.53)的平均值MPa)。在各种金属陶瓷的粘结强度之间未观察到显着差异。样品的表面在增材制造层之间具有微小的间隙。结论所有这五种粉末的粘结强度均高于最低25 MPa的要求(ISO 9693)。因此,可以将各种粉末应用于SLS制造的金属结构。

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