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不同加载条件下Kennedy I类种植体支持可摘局部义齿的应变分布

Strain Distribution in a Kennedy Class I Implant Assisted Removable Partial Denture under Various Loading Conditions.

作者信息

Shahmiri Reza, Aarts John M, Bennani Vincent, Das Raj, Swain Michael V

机构信息

Department of Oral Rehabilitation, Faculty of Dentistry, University of Otago, P.O. Box 647, Dunedin 9054, New Zealand.

出版信息

Int J Dent. 2013;2013:351279. doi: 10.1155/2013/351279. Epub 2013 Apr 30.

Abstract

Purpose. This in vitro study investigates how unilateral and bilateral occlusal loads are transferred to an implant assisted removable partial denture (IARPD). Materials and Methods. A duplicate model of a Kennedy class I edentulous mandibular arch was made and then a conventional removable partial denture (RPD) fabricated. Two Straumann implants were placed in the second molar region, and the prosthesis was modified to accommodate implant retained ball attachments. Strain gages were incorporated into the fitting surface of both the framework and acrylic to measure microstrain ( μ Strain). The IARPD was loaded to 120Ns unilaterally and bilaterally in three different loading positions. Statistical analysis was carried out using SPSS version 18.0 (SPSS, Inc., Chicago, IL, USA) with an alpha level of 0.05 to compare the maximum μ Strain values of the different loading conditions. Results. During unilateral and bilateral loading the maximum μ Strain was predominantly observed in a buccal direction. As the load was moved anteriorly the μ Strain increased in the mesial area. Unilateral loading resulted in a twisting of the structure and generated a strain mismatch between the metal and acrylic surfaces. Conclusions. Unilateral loading created lateral and vertical displacement of the IARPD. The curvature of the dental arch resulted in a twisting action which intensified as the unilateral load was moved anteriorly.

摘要

目的。本体外研究探讨单侧和双侧咬合负荷如何传递至种植体支持的可摘局部义齿(IARPD)。材料与方法。制作了一个Kennedy I类无牙下颌弓的复制模型,然后制作了一副传统可摘局部义齿(RPD)。在第二磨牙区域植入两颗士卓曼种植体,并对义齿进行修改以容纳种植体固位球附着体。应变片被整合到支架和丙烯酸树脂的贴合面上以测量微应变(微应变)。IARPD在三个不同加载位置分别进行单侧和双侧120Ns的加载。使用SPSS 18.0版软件(SPSS公司,美国伊利诺伊州芝加哥)进行统计分析,显著性水平为0.05,以比较不同加载条件下的最大微应变值。结果。在单侧和双侧加载过程中,最大微应变主要出现在颊侧方向。随着负荷向前移动,近中区域的微应变增加。单侧加载导致结构扭转,并在金属和丙烯酸树脂表面产生应变不匹配。结论。单侧加载导致IARPD出现侧向和垂直位移。牙弓的曲率导致扭转作用,随着单侧负荷向前移动,扭转作用加剧。

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