不连续玻璃纤维对玻璃离子水泥力学性能的影响。

Acta Biomaterialia Odontologica Scandinavica Pub Date : 2018-07-31 eCollection Date: 2018-01-01 DOI:10.1080/23337931.2018.1491798
Sufyan K Garoushi, Jingwei He, Pekka K Vallittu, Lippo V J Lassila
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引用次数: 16

摘要

目的:研究不同载荷分量的不连续玻璃微纤维对自固化玻璃离子水泥(GIC)力学性能的增强作用。方法:在不同质量比(15、20、25、35、45质量%)的自固化GIC (GC Fuji IX)粉末中加入长度为200-300µm的不连续玻璃微纤维(硅烷/非硅烷处理),采用高速混合装置制备实验纤维增强GIC (Exp-GIC)。测定了各实验材料和对照材料的抗弯强度、抗弯模量、断裂功、抗压强度和直径抗拉强度。试验前将标本(n = 8)湿保存(37℃保存1天)。利用扫描电子显微镜和能量色散光谱仪对水泥液处理后的硅化纤维和非硅化纤维表面进行了分析。采用多元方差分析(MANOVA)对结果进行分析。结果:25质量%的纤维增强GIC的抗弯模量(3.8 GPa)、抗弯强度(48 MPa)和直径抗拉强度(18 MPa)均显著高于未增强的纤维增强GIC (p > 0.05)。结论:使用带有自固化GIC基体的不连续玻璃微纤维,除抗压强度外,其他性能均有显著提高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Effect of discontinuous glass fibers on mechanical properties of glass ionomer cement.

Effect of discontinuous glass fibers on mechanical properties of glass ionomer cement.

Effect of discontinuous glass fibers on mechanical properties of glass ionomer cement.

Effect of discontinuous glass fibers on mechanical properties of glass ionomer cement.

Aim: This study investigated the reinforcing effect of discontinuous glass microfibers with various loading fractions on selected mechanical properties of self-cure glass ionomer cement (GIC).

Method: Experimental fiber reinforced GIC (Exp-GIC) was prepared by adding discontinuous glass microfiber (silane/non-silane treated) of 200-300 µm in length to the powder of self-cure GIC (GC Fuji IX) with various mass ratios (15, 20, 25, 35, and 45 mass%) using a high speed mixing device. Flexural strength, flexural modulus, work of fracture, compressive strength and diametral tensile strength were determined for each experimental and control materials. The specimens (n = 8) were wet stored (37 °C for one day) before testing. Scanning electron microscopy equipped with energy dispersive spectrometer was used to analysis the surface of silanized or non-silanized fibers after treated with cement liquid. The results were analyzed with using multivariate analysis of variance MANOVA.

Results: Fiber-reinforced GIC (25 mass%) had significantly higher mechanical performance of flexural modulus (3.8 GPa), flexural strength (48 MPa), and diametral tensile strength (18 MPa) (p < .05) compared to unreinforced material (0.9 GPa, 26 MPa and 8 MPa). No statistical significant difference in tested mechanical properties was recorded between silanized and non-silanized Exp-GIC groups. Compressive strength did not show any significant differences (p > .05) between the fiber-reinforced and unreinforced GIC.

Conclusion: The use of discontinuous glass microfibers with self-cure GIC matrix considerably increased the all of the studied properties except compressive strength.

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