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Methods for Global and Local FEM Analysis of Riveted Joint on the Example of the PZL M28 Skytruck Aircraft

机译:以PZL M28天车飞机为例的铆接接头整体和局部有限元分析方法

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The paper considers some aspects of FEM modeling of riveted joints with application of shell elements and submodeling technique. Presented works were carried out within Eureka project No. E!3496 called IMPERJA. The goal of the IMPERJA project is to increase the fatigue life of riveted joints. The project assumed FEM modeling of the operating aircraft's structure at three different complexity levels, namely considering the complete structure, a structural detail and a single riveted joint. The paper presents analyses of various rivet models and calculations of a structure and a riveted joint.In the first part examples of various rivet models were presented and usefulness of them was discussed. Influence of the following simplification was analyzed; a€¢ neglecting of rivets in a model (elements are jointed continuously) a€¢ rivet as a rigid element (MPC) a€¢ neglecting of contact phenomenon a€¢ neglecting of secondary bending. The basis of the analysis was the asymmetric butt joint model with 14 rivets. The model which took into account secondary bending and contact phenomenon was analyzed as well.In the second part, the example of analysis of riveted joint on a lower skin of the PZL M28 Skytruck aircraft wing was presented. A submodeling technique was used there. At first, part of the wing model, was built. It includes 7 ribs and 6 bulkheads between them. Boundary conditions were taken on a basis of operation data. Presence of rivets was neglected. The Linear material model was used. The purpose of this calculation was to gain accurate boundary conditions for the model of riveted joint on the middle rib. Next a shell model of chosen area was build. Boundary conditions were set on a basis of result from previous analysis. Because of large stiffness difference between part models (part of wing and riveted joint) forces, instead of displacements, were used, as boundary conditions. The nonlinear model of material was used. A contact effect, secondary bending and residual stresses were taken into account. Results from this analysis are planned to be used as boundary conditions in a calculation of single rivet with solid detailed model. The presented method allows analyzing phenomena that appear around a rivet in a real structure, during operation. Analyses were performed with MSC PATRAN and NASTRAN software.
机译:本文考虑了壳单元和子建模技术的应用,对铆接接头的有限元建模进行了一些研究。展示的作品在Eureka项目E!3496中进行,项目名为IMPERJA。 IMPERJA项目的目标是延长铆接接头的疲劳寿命。该项目假设在三种不同的复杂度级别上对运行中的飞机结构进行有限元建模,即考虑完整的结构,结构细节和单个铆接接头。本文介绍了各种铆钉模型的分析以及结构和铆钉接头的计算。在第一部分中,介绍了各种铆钉模型的示例,并讨论了它们的实用性。分析了以下简化的影响;忽略模型中的铆钉(元素连续连接)忽略铆钉作为刚性元件(MPC)忽略接触现象或忽略二次弯曲。分析的基础是具有14个铆钉的不对称对接模型。第二部分以PZL M28 Skytruck飞机机翼下蒙皮的铆接分析为例。在那里使用了子建模技术。首先,建立了机翼模型的一部分。它之间包括7根肋骨和6个隔板。边界条件是根据操作数据得出的。铆钉的存在被忽略了。使用了线性材料模型。该计算的目的是为中肋上的铆接接头模型获得准确的边界条件。接下来,构建选定区域的壳模型。边界条件是根据先前分析的结果设置的。由于零件模型(机翼的一部分和铆钉连接的零件)之间的刚度差异较大,因此将力(而不是位移)用作边界条件。使用材料的非线性模型。考虑了接触效应,二次弯曲和残余应力。计划将这种分析的结果用作具有固体详细模型的单铆钉计算的边界条件。所提出的方法允许在操作期间分析在真实结构中的铆钉周围出现的现象。使用MSC PATRAN和NASTRAN软件进行分析。

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