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首页> 外文期刊>Brazilian Oral Research >Influence of crosshead speed on failure load and failure mode of restored maxillary premolars
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Influence of crosshead speed on failure load and failure mode of restored maxillary premolars

机译:十字头速度对修复的上颌前磨牙的破坏载荷和破坏方式的影响

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摘要

We analyzed the effect of the crosshead speed of an applied load on failure load and failure mode of restored human premolars. Fifty intact, noncarious human premolars were selected. Class II mesio-occlusodistal preparations were made with a water-cooled high-speed preparation machine, and the teeth were restored with composite resin. The specimens were divided into five groups (n = 10 each) and tested individually in a mechanical testing machine, in which a 6.0-mm-diameter steel cylinder was mounted to vary the crosshead speed: v0.5: 0.5 mm/min; v1: 1.0 mm/min; v2.5: 2.5 mm/min; v5: 5.0 mm/min; and v10: 10.0 mm/min. The cylinder contacted the facial and lingual ridges beyond the margins of the restorations. Peak load to fracture was measured for each specimen (N). The means were calculated and analyzed with one-way analysis of variance followed by Tukey's test (a = 0.05). The mean load at failure values were (N) as follows: v0.5, 769.4 ± 174.8; v1, 645.2 ± 115.7; v5, 614.3 ± 126.0; v2.5, 609.2 ± 208.1; and v10, 432.5 ± 136.9. The fracture modes were recorded on the basis of the degree of the tooth structural and restorative damage: (I) fracture of the restoration involving a small portion of the tooth; (II) fractures involving the coronal portion of the tooth with cohesive failure of the composite resin; (III) oblique tooth and restoration fracture with periodontal involvement; and (IV) vertical root and coronal fracture. Varying crosshead speeds of 0.5–5.0 mm/min did not influence the failure load of restored maxillary premolars; however, increasing the crosshead speed to 10 mm/min decreased the failure load values and the degree of tooth structural damage.
机译:我们分析了施加载荷的十字头速度对恢复的人类前磨牙的破坏载荷和破坏模式的影响。选择了五十个完整的,非龋齿的人类前磨牙。用水冷高速制备机制备II级近中牙咬合制剂,并用复合树脂修复牙齿。将样品分为五组(每组n = 10),并在机械测试机中进行单独测试,其中安装了直径6.0毫米的钢瓶以改变十字头速度:v0.5:0.5毫米/分钟; v1:1.0mm / min; v2.5:2.5毫米/分钟; v5:5.0毫米/分钟; v10:10.0毫米/分钟。圆柱体接触到修复体边缘以外的面部和舌部脊。测量每个样品的断裂峰值载荷(N)。计算均值并通过单向方差分析,然后进行Tukey检验(a = 0.05)进行分析。失效值的平均负载为(N),如下:v0.5,769.4±174.8; v1,645.2±115.7; v5,614.3±126.0; v2.5,609.2±208.1;和v10,432.5±136.9。根据牙齿结构和修复损伤的程度记录骨折模式:(I)修复体的骨折涉及牙齿的一小部分; (II)涉及牙齿冠状部分的骨折,复合树脂的内聚破坏; (三)斜牙及牙周受累的修复性骨折; (IV)垂直根和冠状骨折。 0.5-5.0 mm / min的十字头速度变化不会影响修复的上颌前磨牙的破坏负荷;但是,将十字头速度提高到10 mm / min会降低破坏载荷值和牙齿结构损坏的程度。

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