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3D-FE analysis of soft liner-acrylic interfaces under shear loading

机译:剪切载荷作用下软衬里-丙烯酸界面的3D-FE分析

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摘要

Aim. To analyze the distribution of stresses at the bond interface of Molloplast-B soft-liner attached to PMMA acrylic surface of different geometries (smooth and rough) and at different load-application distances by 3D-FEA modeling of typical shear-bond test. Methodology Three-dimensional finite element analysis (3D-FE) was performed utilizing Patron and Marc softwares (MSC.Software, USA). Models of Molloplast-B disk liner (diameter: 8 mm, thickness: 3 mm) bonded to smooth and rough acrylic geometries were designed. A total of 8 models (4 models for each surface geometry) were used to analyze Von Mises, maximum principal and shear stresses for the nodes corresponding to the vertical diameter of the acrylic-liner interface when applying a uniform shear-loading at different distances from the interface; 0.25,0.5,1, and 2 mm. Materials properties were assumed to be isotropic, homogeneous, linear and elastic. Results. Shear loadings, at various distances from the bond-interfaces, produced different magnitudes of shear and tensile stresses. They were more uniform for both smooth and rough geometries when loading was applied at smaller distances from the interface (0.25 and 0.50). The maximum shear stress did not surpass maximum tensile stress in the areas subjected to the highest stress. These values were higher for the models with increased distances and bending moment associated with rough surfaces. Conclusions. It can be concluded that in conducting shear bond tests, shear and tensile stresses are present regardless of the distance from the bond interface at which the shearing stress is applied. However, at increased distances from the bond interface, tensile stresses are greater than shear stresses. When shear stress is applied at shorter distances from the bond interface (0.25 or 0.50 mm), and regardless of bond-interface geometry; there is more uniform stress distribution and lower effect of bending moment. However, in vitro studies of bond strengths between soft liners and acrylic substrates obtained by shear test should be approached with caution, considering the distance of load application and the surface treatment of the substrate as the most important factors that could interfere with the shear test values.
机译:目标。通过典型的剪切粘结试验的3D-FEA建模,分析不同几何形状(光滑和粗糙)和在不同载荷施加距离下,连接到PMMA丙烯酸表面的Molloplast-B软衬的粘结界面处的应力分布。方法学利用Patron和Marc软件(美国MSC.Software)进行三维有限元分析(3D-FE)。设计了与光滑和粗糙的丙烯酸几何形状粘合的Molloplast-B圆盘衬板(直径:8 mm,厚度:3 mm)的模型。总共使用8个模型(每种表面几何模型为4个模型)来分析Von Mises,与丙烯酸-内衬界面垂直直径相对应的节点的最大主应力和剪应力,这些应力分别是在距距接口; 0.25、0.5、1和2毫米。假定材料特性为各向同性,均质,线性和弹性。结果。在距粘结界面不同距离处的剪切载荷会产生不同大小的剪切应力和拉伸应力。当在距界面较小的距离(0.25和0.50)处施加载荷时,它们对于光滑和粗糙的几何形状都更均匀。在承受最高应力的区域中,最大剪切应力不会超过最大拉伸应力。对于具有增加的距离和与粗糙表面相关的弯矩的模型,这些值更高。结论。可以得出结论,在进行剪切粘结测试时,无论与施加剪切应力的粘结界面之间的距离如何,都会存在剪切应力和拉伸应力。但是,在距粘结界面的距离增加的情况下,拉伸应力大于剪切应力。当剪切应力施加到距粘结界面更短的距离(0.25或0.50 mm)时,无论粘结界面的几何形状如何;应力分布更均匀,弯矩影响较小。但是,应谨慎地进行通过剪切试验获得的软衬板和丙烯酸类基材之间的粘结强度的体外研究,考虑到施加载荷的距离和基材的表面处理是可能影响剪切试验值的最重要因素。 。

著录项

  • 来源
    《Dental materials》 |2011年第5期|p.445-454|共10页
  • 作者单位

    Biomaterials Research Group, School 0f Dentistry, University of Manchester, Higher Cambridge Street, Manchester M15 6FH, UK;

    Dental Research Group, School 0f Dentistry, Bandeirante University of São Paulo, Rua Maria Candida, 1813, São Paulo 02071-013, Brazil;

    Biomaterials Research Group, School 0f Dentistry, University of Manchester, Higher Cambridge Street, Manchester M15 6FH, UK;

    Biomaterials Research Group, School 0f Dentistry, University of Manchester, Higher Cambridge Street, Manchester M15 6FH, UK;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    fea; shear bond strength; soft liner; acrylic prosthesis;

    机译:有限元;剪切粘结强度;软衬里;丙烯酸假体;
  • 入库时间 2022-08-18 03:47:17

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