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首页> 外文期刊>The Journal of Prosthetic Dentistry >Structure and mechanical properties of Cresco-Ti laser-welded joints and stress analyses using finite element models of fixed distal extension and fixed partial prosthetic designs.
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Structure and mechanical properties of Cresco-Ti laser-welded joints and stress analyses using finite element models of fixed distal extension and fixed partial prosthetic designs.

机译:Cresco-Ti激光焊接接头的结构和力学性能以及使用固定的远端延伸和固定的局部修复设计的有限元模型进行应力分析。

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STATEMENT OF PROBLEM: The Cresco-Ti System uses a laser-welded process that provides an efficient technique to achieve passive fit frameworks. However, mechanical behavior of the laser-welded joint under biomechanical stress factors has not been demonstrated. PURPOSE: This study describes the effect of Cresco-Ti laser-welding conditions on the material properties of the welded specimen and analyzes stresses on the weld joint through 3-dimensional finite element models (3-D FEM) of implant-supported fixed dentures with cantilever extensions and fixed partial denture designs. MATERIAL AND METHODS: Twenty Grade III (ASTM B348) commercially pure titanium specimens were machine-milled to the dimensions described in the EN10002-1 tensile test standard and divided into test (n = 10) and control (n = 10) groups. The test specimens were sectioned and laser-welded. All specimens were subjected to tensile testing to determine yield strength (YS), ultimate tensile strength (UTS), and percent elongation (PE). The Knoop micro-indentation test was performed to determine the hardness of all specimens. On welded specimens, the hardness test was performed at the welded surface. Data were analyzed with the Mann-Whitney U test and Student's t test (alpha=.05). Fracture surfaces were examined by scanning electron microscopy to characterize the mode of fracture and identify defects due to welding. Three-dimensional FEMs were created that simulated a fixed denture with cantilever extensions supported by 5 implants (M1) and a fixed partial denture supported by 2 implants (M2), 1 of which was angled 30 degrees mesio-axially. An oblique load of 400 N with 15 degrees lingual-axial inclinations was applied to both models at various locations. RESULTS: Test specimens fractured between the weld and the parent material. No porosities were observed on the fractured surfaces. Mean values for YS, UTS, PE, and Knoop hardness were 428 +/- 88 MPa, 574 +/- 113 MPa, 11.2 +/- 0.4%, 270 +/- 17 KHN, respectively, for the control group and 642 +/-2 MPa, 772 +/- 72 MPa, 4.8 +/- 0.7%, 353 +/- 23 KHN, respectively, for the test group. The differences between the groups were significant for all mechanical properties ( P <.05). For both models, the FEA revealed that maximum principal stresses were concentrated at the framework-weld junction but did not exceed the UTS of the weld joint. CONCLUSION: Within the constraints of the finite element models, mechanical failure of the welded joint between the support and the framework may not be expected under biomechanical conditions simulated in this study.
机译:问题陈述:Cresco-Ti系统使用激光焊接工艺,该工艺提供了一种有效的技术来实现被动配合框架。但是,尚未证明在生物力学应力因素下激光焊接接头的机械性能。目的:本研究描述了Cresco-Ti激光焊接条件对焊接样品材料性能的影响,并通过植入物支持的固定义齿的3维有限元模型(3-D FEM)分析了焊接接头上的应力,悬臂延伸和固定局部义齿设计。材料和方法:将20级III级(ASTM B348)商业纯钛标本机械研磨至EN10002-1拉伸测试标准中所述的尺寸,并分为测试组(n = 10)和对照组(n = 10)。将试样切片并激光焊接。对所有样品进行拉伸测试,以确定屈服强度(YS),极限拉伸强度(UTS)和伸长率(PE)。进行努氏显微压痕测试以确定所有样品的硬度。在焊接的样品上,在焊接表面进行了硬度测试。用Mann-Whitney U检验和St​​udent's t检验(alpha = .05)分析数据。通过扫描电子显微镜检查断裂表面,以表征断裂模式并确定由于焊接引起的缺陷。创建了三维有限元模型,模拟了由5个植入物(M1)支撑的悬臂延伸固定义齿和由2个植入物(M2)支撑的固定局部义齿,其中1个是近中轴倾斜30度。带有15度舌轴向倾角的400 N斜向载荷在两个位置的两个模型上均施加。结果:试样在焊缝和母材之间断裂。在断裂表面上未观察到孔隙。对照组和对照组的YS,UTS,PE和努氏硬度平均值分别为428 +/- 88 MPa,574 +/- 113 MPa,11.2 +/- 0.4%,270 +/- 17 KHN。对于测试组,分别为/ -2 MPa,772 +/- 72 MPa,4.8 +/- 0.7%,353 +/- 23 KHN。两组之间的差异对于所有机械性能而言都是显着的(P <.05)。对于这两个模型,FEA显示最大主应力集中在框架-焊接处,但不超过焊接接头的UTS。结论:在有限元模型的约束下,在本研究模拟的生物力学条件下,支架和框架之间的焊接接头可能不会发生机械故障。

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