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临时树脂材料的力学性能与模拟磨损

Mechanical Properties and Simulated Wear of Provisional Resin Materials.

作者信息

Takamizawa T, Barkmeier W W, Tsujimoto A, Scheidel D, Erickson R L, Latta M A, Miyazaki M

出版信息

Oper Dent. 2015 Nov-Dec;40(6):603-13. doi: 10.2341/14-132-L.1. Epub 2014 Nov 18.

Abstract

The purpose of this study was to determine flexural properties and erosive wear behavior of provisional resin materials. Three bis-acryl base provisional resins-1) Protemp Plus (PP), 2) Integrity (IG), 3) Luxatemp Automix Plus (LX)-and a conventional poly(methylmethacrylate) (PMMA) resin, UniFast III (UF), were evaluated. A resin composite, Z100 Restorative (Z1), was included as a benchmark material. Six specimens for each of the four materials were used to determine flexural strength and elastic modulus according to ISO Standard 4049. Twelve specimens for each material were used to examine wear using a generalized wear simulation model. The test materials were each subjected to wear challenges of 25,000, 50,000, 100,000, and 200,000 cycles in a Leinfelder-Suzuki (Alabama) wear simulator. The materials were placed in custom cylinder-shaped stainless-steel fixtures, and wear was generated using a cylindrical-shaped flat-ended stainless-steel antagonist in a slurry of nonplasticized PMMA beads. Wear (mean facet depth [μm] and volume loss [mm(3)]) was determined using a noncontact profilometer (Proscan 2100) with Proscan and AnSur 3D software. The laboratory data were evaluated using two-way analysis of variance (ANOVA; factors: 1) material and 2) cycles) followed by Tukey HSD post hoc test (α=0.05). The flexural strength ranged from 68.2 to 150.6 MPa, and the elastic modulus ranged from 2.0 to 15.9 GPa. All of the bis-acryl provisional resins (PP, IG, and LX) demonstrated significantly higher values than the PMMA resin (UF) in flexural strength and elastic modulus (p<0.05). However, there was no significant difference (p>0.05) in flexural properties among three bis-acryl base provisional resins (PP, IG, and LX). Z1 demonstrated significantly (p<0.05) higher flexural strength and elastic modulus than the other materials tested. The results for mean facet wear depth (μm) and standard deviations (SD) for 200,000 cycles were as follows: PP, 22.4 (5.0); IG, 51.0 (6.5); LX, 63.7 (4.5); UF, 70.5 (8.0); and Z1, 7.6 (1.2). Volume loss (mm(3)) and SDs for 200,000 cycles were as follows: PP, 0.311 (0.049); IG, 0.737 (0.074); LX, 0.919 (0.053); UF, 1.046 (0.127); and Z1, 0.111 (0.017). The two-way ANOVA showed a significant difference among materials (p<0.001) and number of cycles for both facet depth and volume loss. The post hoc test revealed differences (p<0.05) in wear values among the tested materials examined in this study. The findings provide valuable information regarding the flexural properties and the relative wear behavior of the provisional resins examined in this study.

摘要

本研究的目的是确定临时树脂材料的弯曲性能和侵蚀磨损行为。对三种双丙烯酸基临时树脂——1)Protemp Plus(PP)、2)Integrity(IG)、3)Luxatemp Automix Plus(LX)——以及一种传统的聚甲基丙烯酸甲酯(PMMA)树脂UniFast III(UF)进行了评估。一种树脂复合材料Z100 Restorative(Z1)被用作基准材料。根据ISO标准4049,每种材料制备六个试样来测定弯曲强度和弹性模量。每种材料制备十二个试样,使用通用磨损模拟模型来检测磨损情况。在Leinfelder-Suzuki(阿拉巴马州)磨损模拟器中,对测试材料分别进行25000、50000、100000和200000次循环的磨损挑战。将材料放置在定制的圆柱形不锈钢固定装置中,在未增塑的PMMA珠粒的浆液中,使用圆柱形平头不锈钢对磨体产生磨损。使用配备Proscan和AnSur 3D软件的非接触轮廓仪(Proscan 2100)测定磨损(平均刻面深度[μm]和体积损失[mm³])。使用双向方差分析(ANOVA;因素:1)材料和2)循环次数)对实验室数据进行评估,随后进行Tukey HSD事后检验(α = 0.05)。弯曲强度范围为68.2至150.6 MPa,弹性模量范围为2.0至15.9 GPa。所有双丙烯酸基临时树脂(PP、IG和LX)在弯曲强度和弹性模量方面均表现出显著高于PMMA树脂(UF)的值(p < 0.05)。然而,三种双丙烯酸基临时树脂(PP、IG和LX)在弯曲性能方面没有显著差异(p > 0.05)。Z1的弯曲强度和弹性模量显著高于其他测试材料(p < 0.05)。200000次循环的平均刻面磨损深度(μm)和标准偏差(SD)结果如下:PP为22.4(5.0);IG为51.0(6.5);LX为63.7(4.5);UF为70.5(8.0);Z1为7.6(1.2)。200000次循环的体积损失(mm³)和标准偏差如下:PP为0.311(0.049);IG为0.737(0.074);LX为0.919(0.053);UF为1.046(0.127);Z1为0.111(0.017)。双向方差分析表明,材料之间(p < 0.001)以及刻面深度和体积损失的循环次数之间存在显著差异。事后检验揭示了本研究中测试材料之间磨损值的差异(p < 0.05)。这些发现为该研究中所检测的临时树脂的弯曲性能和相对磨损行为提供了有价值的信息。

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