首页> 外文期刊>The Journal of Advanced Prosthodontics >The influence of various core designs on stress distribution in the veneered zirconia crown: a finite element analysis study
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The influence of various core designs on stress distribution in the veneered zirconia crown: a finite element analysis study

机译:各种核心设计对单板氧化锆冠应力分布的影响:有限元分析研究

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PURPOSE The purpose of this study was to evaluate various core designs on stress distribution within zirconia crowns. MATERIALS AND METHODS Three-dimensional finite element models, representing mandibular molars, comprising a prepared tooth, cement layer, zirconia core, and veneer porcelain were designed by computer software. The shoulder (1 mm in width) variations in core were incremental increases of 1 mm, 2 mm and 3 mm in proximal and lingual height, and buccal height respectively. To simulate masticatory force, loads of 280 N were applied from three directions (vertical, at a 45° angle, and horizontal). To simulate maximum bite force, a load of 700 N was applied vertically to the crowns. Maximum principal stress (MPS) was determined for each model, loading condition, and position. RESULTS In the maximum bite force simulation test, the MPSs on all crowns observed around the shoulder region and loading points. The compressive stresses were located in the shoulder region of the veneer-zirconia interface and at the occlusal region. In the test simulating masticatory force, the MPS was concentrated around the loading points, and the compressive stresses were located at the 3 mm height lingual shoulder region, when the load was applied horizontally. MPS increased in the shoulder region as the shoulder height increased. CONCLUSION This study suggested that reinforced shoulder play an essential role in the success of the zirconia restoration, and veneer fracture due to occlusal loading can be prevented by proper core design, such as shoulder.
机译:目的本研究的目的是评估氧化锆冠内部应力分布的各种核心设计。材料与方法通过计算机软件设计了代表下颌磨牙的三维有限元模型,包括准备好的牙齿,水泥层,氧化锆核和贴面瓷。核心的肩部(宽度为1毫米)变化分别是近端和舌高以及颊高分别增加1毫米,2毫米和3毫米。为了模拟咀嚼力,从三个方向(垂直,成45°角和水平)施加了280 N的载荷。为了模拟最大的咬合力,将700 N的载荷垂直施加到牙冠。确定每个模型,加载条件和位置的最大主应力(MPS)。结果在最大咬合力模拟测试中,在肩部区域和载荷点周围观察到的所有冠部的MPS。压应力位于单板-氧化锆界面的肩部区域和咬合区域。在模拟咀嚼力的测试中,当水平施加载荷时,MPS集中在载荷点周围,并且压应力位于3 mm高的舌肩区域。随着肩膀高度的增加,MPS在肩膀区域增加。结论这项研究表明,加强肩部在氧化锆修复的成功中起着至关重要的作用,并且可以通过适当的核心设计(例如肩部)来防止由于咬合负荷导致的单板断裂。

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