水热老化树脂基材料的双轴抗弯强度

IF 3.3 2区 医学 Q2 ENGINEERING, BIOMEDICAL Journal of the Mechanical Behavior of Biomedical Materials Pub Date : 2024-05-04 DOI:10.1016/j.jmbbm.2024.106568
Rodrigo Ricci Vivan , Mariana Miranda de Toledo Piza , Bruna de Mello Silva , Thalya Fernanda Horsth Maltarollo , Gustavo Sivieri-Araujo , Murilo Priori Alcalde , Marco Antonio Hungaro Duarte , Estevam Augusto Bonfante , Henrico Badaoui Strazzi-Sahyon
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引用次数: 0

摘要

目的 临时修复体的强度在全口重建中起着至关重要的作用,它可能会受到老化过程的影响。材料和方法 制作了 192 个树脂圆盘状试样(直径 6.5 毫米,厚度 0.5 毫米),并根据树脂材料(Filtek Bul-Fill 流动树脂、J-Temp 临时树脂和 Fuji Lining 玻璃离子粘固剂)和老化过程(热循环前后)分为六个实验组。在热循环前后(5 °C 和 55 °C,5760 个循环,30 秒),用万能试验机以 0.5 mm/min 的十字头速度进行了双轴挠曲强度测试。机械性能采用威布尔参数(特性强度和威布尔模量)进行评估(n = 30)。在偏振光体视显微镜下对断裂试样进行检查,以确定裂纹的起源和扩展方向。用扫描电子显微镜评估了树脂基材料的表面微观结构(n = 2)。结果树脂基化合物的威布尔模量(m)、特征强度和可靠性受材料类型和热老化的影响(p <0.05)。在比较材料和老化过程时,Weibull 模量(m)没有发现差异(p > 0.05),但在老化前期,Filtek Bulk-Fill 的值比 J-Temp 高(p < 0.05)。在热循环前后,Filtek Bulk-Fill 与 J-Temp 和 Fuji Lining 相比,显示出更高的特性强度和可靠性(p < 0.05)。树脂基材料的断裂图显示,断裂源于暴露在拉伸侧的表面缺陷,并向压缩侧扩展。一般来说,Filtek Bulk-Fill 和 Fuji Lining 在热老化前后的显微照片上没有观察到表面微观结构的差异。结论树脂基材料的组成导致了不同的抗弯强度性能,影响了树脂基修复体的威布尔模量(m)、特征强度和可靠性。
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Biaxial flexural strength of hydrothermally aged resin-based materials

Purpose

The strength of temporary restorations plays a vital role in full-mouth reconstruction, and it can be impacted by the aging process. The aim of this in vitro study was to evaluate the biaxial flexural strength and fractographic features of different resin-based materials submitted to thermal aging.

Material and methods

One hundred and ninety-two resin disc-shaped specimens (6.5 mm in diameter and 0.5 mm in thickness) were fabricated and divided into six experimental groups according to the resin-based materials (Filtek Bulk-Fill flowable resin; J-Temp temporary resin; and Fuji Lining glass ionomer cement) and aging process (before and after thermal cycling). Biaxial flexural strength test was performed using a universal testing machine at a crosshead speed of 0.5 mm/min before and after thermal cycling (5 °C and 55 °C, 5760 cycles, 30 s). The mechanical properties were assessed using Weibull parameters (characteristic strength and Weibull modulus) (n = 30). Fractured specimens were examined under a polarized light stereomicroscope to identify crack origin and propagation direction. The surface microstructure of the resin-based materials was assessed by scanning electron microscopy (n = 2). The Weibull modulus (m), characteristic strength, and reliability properties were calculated, and a contour plot was used to detect differences among groups (95% confidence interval).

Results

The Weibull modulus (m), characteristic strength, and reliability of the resin-based compounds were influenced by material type and thermal aging (p < 0.05). Weibull modulus (m) revealed no differences when comparing the materials and aging process (p > 0.05), except for the preceding aging period where Filtek Bulk-Fill exhibited higher values compared to J-Temp (p < 0.05). Filtek Bulk-Fill demonstrated superior characteristic strength and reliability compared to J-Temp and Fuji Lining before and after thermal cycling (p < 0.05). Fractography of the resin-based materials showed fractures originating from surface defects exposed to tensile side and their propagation toward the compressive side. Generally, no differences in surface microstructure were observed on micrographs before and after thermal aging for Filtek Bulk-Fill and Fuji Lining. However, the aging process developed flaws in J-Temp.

Conclusion

Resin-based material composition resulted in different flexural strength performance, impacting the Weibull modulus (m), characteristic strength, and reliability of the resin-based restorations.

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来源期刊
Journal of the Mechanical Behavior of Biomedical Materials
Journal of the Mechanical Behavior of Biomedical Materials 工程技术-材料科学:生物材料
CiteScore
7.20
自引率
7.70%
发文量
505
审稿时长
46 days
期刊介绍: The Journal of the Mechanical Behavior of Biomedical Materials is concerned with the mechanical deformation, damage and failure under applied forces, of biological material (at the tissue, cellular and molecular levels) and of biomaterials, i.e. those materials which are designed to mimic or replace biological materials. The primary focus of the journal is the synthesis of materials science, biology, and medical and dental science. Reports of fundamental scientific investigations are welcome, as are articles concerned with the practical application of materials in medical devices. Both experimental and theoretical work is of interest; theoretical papers will normally include comparison of predictions with experimental data, though we recognize that this may not always be appropriate. The journal also publishes technical notes concerned with emerging experimental or theoretical techniques, letters to the editor and, by invitation, review articles and papers describing existing techniques for the benefit of an interdisciplinary readership.
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