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Biomechanical evaluation of internal and external hexagon platform switched implant-abutment connections: an in vitro laboratory and three-dimensional finite element analysis

机译:内部和外部六角平台切换的种植体-基台连接的生物力学评估:体外实验室和三维有限元分析

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摘要

ObjectivesThe aim of this study was to assess the effect of abutment's diameter shifting on reliability and stress distribution within the implant-abutment connection for internal and external hexagon implants. The postulated hypothesis was that platform-switched implants would result in increased stress concentration within the implant-abutment connection, leading to the systems’ lower reliability.MethodsEighty-four implants were divided in four groups (n = 21): REG-EH and SWT-EH (regular and switched-platform implants with external connection, respectively); REG-IH and SWT-IH (regular and switched-platform implants with internal connection, respectively). The corresponding abutments were screwed to the implants and standardized maxillary central incisor metal crowns were cemented and subjected to step-stress accelerated life testing. Use-level probability Weibull curves and reliability were calculated. Four finite element models reproducing the characteristics of specimens used in laboratory testing were created. The models were full constrained on the bottom and lateral surface of the cylinder of acrylic resin and one 30° off-axis load (300 N) was applied on the lingual side of the crown (close to the incisal edge) in order to evaluate the stress distribution (svM) within the implant-abutment complex.ResultsThe Beta values for groups SWT-EH (1.31), REG-EH (1.55), SWT-IH (1.83) and REG-IH (1.82) indicated that fatigue accelerated the failure of all groups. The higher levels of σvM within the implant-abutment connection observed for platform-switched implants (groups SWT-EH and SWT-IH) were in agreement with the lower reliability observed for the external hex implants, but not for the internal hex implants. The reliability 90% confidence intervals (50,000 cycles at 300 N) were 0.53(0.33–0.70), 0.93(0.80–0.97), 0.99(0.93–0.99) and 0.99(0.99–1.00), for the SWT-EH, REG-EH, SWT-IH, and REH-IH, respectively.SignificanceThe postulated hypothesis was partially accepted. The higher levels of stress observed within implant-abutment connection when reducing abutment diameter (cross-sectional area) resulted in lower reliability for external hex implants, but not for internal hex implants.
机译:目的本研究的目的是评估内,外六角形种植体的基台直径变化对种植体-基台连接内可靠性和应力分布的影响。假设的假设是平台切换式植入物会导致植入物-基台连接内的应力集中增加,从而导致系统的可靠性降低。方法84个植入物分为四组(n = 21):REG-EH和SWT -EH(分别带有外部连接的常规和开关平台植入物); REG-IH和SWT-IH(分别具有内部连接的常规和开关平台植入物)。将相应的基台拧入植入物,并用水泥固定标准化的上颌中切牙金属冠,并进行阶梯应力加速寿命测试。计算了使用水平概率的威布尔曲线和可靠性。创建了四个有限元模型,它们再现了实验室测试中所用试样的特性。将模型完全约束在丙烯酸树脂圆柱体的底部和侧面,并在冠的舌侧(靠近切缘)施加一个30°的离轴载荷(300 N),以评估结果植入物-基台复合体中的应力分布(svM)结果SWT-EH(1.31),REG-EH(1.55),SWT-IH(1.83)和REG-IH(1.82)组的Beta值表明疲劳加速了失败所有组中。平台切换式种植体(SWT-EH和SWT-IH组)的种植体-基台连接处的σvM较高,与外部六角形种植体(而非内部六角形种植体)的可靠性较低相符。对于SWT-EH,REG-,可靠性90%置信区间(300 N下50,000个循环)为0.53(0.33-0.70),0.93(0.80-0.97),0.99(0.93-0.99)和0.99(0.99-1.00)。意义分别为EH,SWT-IH和REH-IH。意义假定假设被部分接受。当减小基台直径(横截面积)时,在种植体-基台连接中观察到的较高应力水平导致外部六角形植入物的可靠性降低,而内部六角形植入物的可靠性较低。

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