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Effects of five thermal stressing regimens on the flexural and bond strengths of a hybrid resin composite.

机译:五个热应力方案对杂化树脂复合材料的弯曲强度和粘结强度的影响。

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Thermocycling is commonly employed in laboratory studies to simulate the in vivo aging of restorative materials. However, there is little consistency in the regimens used, and some researchers have questioned the clinical relevance and, hence, the necessity of including thermal stressing in in vitro protocols. This study examined the effects of five thermal stressing regimens on the flexural and dentin bond strengths of a hybrid resin composite. METHODS: For flexural strength tests, 95 rectangular specimens (15 mm x 2 mm x 2 mm) were fabricated using a stainless steel split mold, then light cured for 60 seconds. For bond strength tests, 75 caries-free molars were flattened occlusally to expose dentin, then polished through 600 grit SiC paper; dentin surfaces were etched, rinsed and blotted dry. A dentin adhesive was applied and light cured for 30 seconds; resin composite was condensed through a stainless steel split mold (4.3 mm diameter x 3.5 mm high), then light cured for 60 seconds. All specimens were stored in deionized water for 24 hours, then stressed for 100 hours according to one of five regimens: 1) cycled between 5 degrees C and 55 degrees C (9000 cycles; 20-second dwell time); 2) held at 5 degrees C constant; 3) held at 22 degrees C constant; 4) held at 55 degrees C constant; 5) held at 5 degrees C for 50 hours, then at 55 degrees C for 50 hours. Flexural strengths were measured using an Instron 5500R and three-point bending apparatus at a crosshead speed of 0.5 mm/minute. Shear bond strengths were measured using an MTS Bionix 200 at a crosshead speed of 0.5 mm/minute. RESULTS: ANOVA revealed no significant differences in either flexural strength or shear bond strength among the five thermal regimens.
机译:在实验室研究中通常采用热循环来模拟修复材料的体内老化。但是,使用的方案几乎没有一致性,一些研究人员质疑其临床相关性,因此质疑在体外方案中加入热应激的必要性。这项研究检查了五种热应力方案对杂化树脂复合材料弯曲和牙本质粘结强度的影响。方法:为了进行抗弯强度测试,使用不锈钢对开模具制作了95个矩形试样(15毫米x 2毫米x 2毫米),然后光固化60秒。为了进行粘合强度测试,将75个无龋的磨牙咬合平整以暴露牙本质,然后通过600粒度的SiC纸进行抛光。将牙本质表面蚀刻,冲洗并吸干。施加牙本质粘合剂并光固化30秒;通过不锈钢对开模具(直径4.3毫米x高3.5毫米)冷凝树脂复合材料,然后光固化60秒。将所有标本在去离子水中保存24小时,然后根据以下五种方案之一进行100小时的应力处理:1)在5摄氏度至55摄氏度之间循环(9000个循环; 20秒的停留时间); 2)保持在5摄氏度恒定; 3)保持在22摄氏度恒定; 4)保持在55摄氏度恒定; 5)在5摄氏度下保持50小时,然后在55摄氏度下保持50小时。使用Instron 5500R和三点弯曲设备以0.5 mm / min的十字头速度测量弯曲强度。使用MTS Bionix 200以0.5 mm / min的十字头速度测量剪切粘结强度。结果:方差分析显示,在五个热疗方案中,弯曲强度或剪切粘结强度均无显着差异。

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