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Influence of Light-Curing Intensity on Color Stability and Microhardness of Composite Resins

机译:光固化强度对复合树脂颜色稳定性和微硬度的影响

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The purpose of this study was to evaluate the intensity of light-curing units and its relationship with the color stability and microhardness of composite resins with different shades subjected to a thermocycling procedure. Eighty blocks (5.0 x 2.0 mm) of TPH Spectrum composite resin (Dentsply Sirona) were produced and distributed into four groups according to the light-curing units (EC 450, ECEL, Valo, Ultradent) and color of the resin material (A3; C3) (n = 20). Within each group, color stability was measured on half the sample (n = 10) using a UV-2450 visible UV spectrophotometer (Shimadzu), and Knoop hardness was measured on the other half (n = 10) using an HMV 2000 microhardness tester (Shimadzu) before and after thermocycling (12,000 cycles, 5 degrees C and 55 degrees C). Mann-Whitney test was performed on the color stability data; the microhardness data were analyzed using a three-way analysis of variance (ANOVA) and Tukey test (alpha = .05). The ANOVA results showed that thermocycling, distinct light intensity, and different colors of resin materials influenced the microhardness of the composite resins, which was evidenced by the A3 composite resin light-cured with a Valo polywave showing higher hardness values. There was no statistical difference in the color stability of the A3 composite resin; however, the C3 composite resin light-cured with an EC 450 singlewave light-curing unit showed higher color alteration values. In general, the Valo polywave light-curing unit imparted better mechanical property and color stability to both shades of the composite resins. The different shades of resin material influenced the hardness of the composite resins. Therefore, the light intensity of the light-curing units should be evaluated and monitored, as the amount of light intensity will interfere in the quality and longevity of resin restorations.
机译:本研究的目的是评估光固化单元的强度及其与复合树脂的颜色稳定性和显微硬度,其不同的阴影经受热循环过程。根据光固化单元(EC 450,Ecel,Valo,Ultradent)和树脂材料的颜色(A3; C3)(n = 20)。在每组内,使用UV-2450可见紫外分光光度计(Shimadzu)在一半的样品(n = 10)上测量颜色稳定性,并且使用HMV 2000微硬度测试仪在另一半(n = 10)上测量Knoop硬度( Shimadzu)热循环前后(12,000个循环,5℃和55℃)。在颜色稳定性数据上进行Mann-Whitney测试;使用三向分析(ANOVA)和Tukey Test(Alpha = .05)进行分析显微硬度数据。 ANOVA结果表明,热循环,不同的光强度和不同颜色的树脂材料影响了复合树脂的显微硬度,其通过用VALO POVERWAVE的A3复合树脂光固化而证明了较高的硬度值。 A3复合树脂的颜色稳定性没有统计学差异;然而,用EC 450单波形光固化单元光固化的C3复合树脂显示出更高的变色变化值。通常,VALO远波式光固化单元赋予复合树脂两种色调的更好的机械性能和颜色稳定性。树脂材料的不同色调影响了复合树脂的硬度。因此,应评估和监测光固化单元的光强度,因为光强度的量会干扰树脂修复的质量和寿命。

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