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首页> 外文期刊>The Journal of Prosthetic Dentistry >Finite element analysis of mechanism of cervical lesion formation in simulated molars during mastication and parafunction.
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Finite element analysis of mechanism of cervical lesion formation in simulated molars during mastication and parafunction.

机译:咀嚼和副功能期间模拟磨牙中宫颈病变形成机理的有限元分析。

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STATEMENT OF PROBLEM: The mechanical theory of cervical lesion formation is popular; however, the mechanism of formation of these lesions is not fully explained. PURPOSE: The aim of this study was calculation of the stresses and Tsai-Wu strength ratio in the cervical area of the mandibular molar during grinding, clenching, and mastication, as well as theoretical investigation of the mechanism of cervical lesion formation in teeth. MATERIAL AND METHODS: A 2-dimensional finite element model of the mandibular first molar and crown of the opposing maxillary molar in the frontal section was developed. Computational simulation of mastication of a bolus with high elastic modulus, including grinding and clenching, was performed. Pairs of contact elements were used between the bolus and occlusal surfaces of the teeth. The analysis was nonlinear. During these simulations, the pressure exerted on the occlusal surface and the state of stresses in the mandibular molar were calculated. To evaluate the strength of anisotropic tooth tissues, the Tsai-Wu failure criterion was applied. This criterion considers the difference in strength of materials due to tensile, compressive, and shear stresses. RESULTS: Significant pressures were exerted on lingual cusps of the mandibular molar model during computer simulations of physiological and pathological load. In enamel elements close to the buccal cemento-enamel junction (CEJ) of the studied tooth, tensile stresses were observed which exceeded the strength of the enamel. In this area, the Tsai-Wu strength ratio reached values higher than 1. According to the Tsai-Wu criterion, these elements were damaged and, thus, were removed from the computer tooth model. During subsequent modeling of the tooth with the initiated cervical lesion, the Tsai-Wu ratio exceeded 1 along the dentino-enamel junction (DEJ), creating an overhang of enamel in the cervical area. Application of minimal horizontal force caused a fracture of this fragile, unsupported enamel fragment. CONCLUSIONS: Overloading of theoretical teeth by computer simulation resulted in enamel damage at the CEJ and led to initiation of a cervical lesion. Subsequent overloading resulted in enamel destruction along the DEJ. The overhanging enamel fragment may easily be chipped. This process was repeated during subsequent tooth overloading and caused enlarging of the lesion.
机译:问题陈述:宫颈病变形成的力学理论很流行。但是,这些病变的形成机理尚未完全阐明。目的:本研究的目的是计算磨牙,咬合和咀嚼过程中下颌磨牙颈部区域的应力和蔡-吴强度比,以及对牙齿中宫颈病变形成机理的理论研究。材料与方法:建立了下颌第一磨牙和额叶对侧上颌磨牙冠的二维有限元模型。对具有高弹性模量的弹丸咀嚼进行了计算模拟,包括研磨和咬合。在牙齿的推注和咬合面之间使用了成对的接触元件。该分析是非线性的。在这些模拟过程中,计算了施加在咬合面上的压力和下颌磨牙的应力状态。为了评估各向异性牙齿组织的强度,采用了蔡-伍破坏准则。该标准考虑了由于拉应力,压应力和剪应力引起的材料强度差异。结果:在计算机模拟生理和病理负荷的过程中,对下颌磨牙模型的舌尖施加了很大的压力。在所研究牙齿的颊齿牙釉质-牙釉质接合处(CEJ)附近的牙釉质元件中,观察到拉伸应力超过了牙釉质的强度。在该区域中,Tsai-Wu强度比达到了高于1的值。根据Tsai-Wu准则,这些元素被损坏,因此从计算机牙齿模型中删除。在随后的具有初始宫颈病变的牙齿建模过程中,沿着牙本质-牙釉质交界处(DEJ)的Tsai-Wu比值超过1,从而在宫颈区域产生了牙釉质的突出部分。施加最小水平力会导致该脆弱的,无支撑的瓷釉碎片破裂。结论:计算机模拟理论牙齿的超负荷导致CEJ处的牙釉质受损,并导致宫颈病变的开始。随后的过载导致沿DEJ的釉质破坏。悬垂的釉质碎片可能容易碎裂。在随后的牙齿超负荷期间重复此过程,并导致病变扩大。

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