首页> 外文会议>IMECE2008;ASME international mechanical engineering congress and exposition >APPLICATION OF A NEW CYLINDRICAL ELEMENT FORMULATION IN FINITE ELEMENT STRUCTURAL ANALYSIS OF FGM HOLLOW CYLINDERS
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APPLICATION OF A NEW CYLINDRICAL ELEMENT FORMULATION IN FINITE ELEMENT STRUCTURAL ANALYSIS OF FGM HOLLOW CYLINDERS

机译:一种新的圆柱单元公式在FGM空心圆柱有限元结构分析中的应用

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Functionally graded materials are advanced composite materials consisting two or more material ingredients that are engineered to have a continuous spatial variation of properties. There are a few analytical methods available to solve the governing equations of FGM made structures, confined to some specific and limited shapes, loadings and boundary conditions. Hence the numerical methods such as FEM are used to treat these materials. In previous studies the finite element method was used to solve thin walled FG structures like shells and plates by modification of the conventional shell and plate elements. Solving the thick walled FG structures confronts some difficulties. One of the methods to overcome this problem is laminating the structure across the direction of material variation, assuming constant material properties in each layer. When the thickness is increased, the number of layers representing the FGM should be also increased to produce an accurate result. Increasing the number of elements implies great time consumption and required memory space. One of the most commonly shapes present in FG structures are hollow cylinders whose analysis is so complicated that may not be done by conventional elements. In this study a superelement approach is chosen to confront the problem. Design and application of superelements in efficient prediction of the structural behavior in a short time has been one of the research interests in the last decade. The superelements are designed for special problems so that they could substitute a huge number of conventional elements in modeling and analysis. In this study a new cylindrical superelement is incorporated to model the functionally graded cylinders, and modal analysis is performed. The advantage of this cylindrical superelement lies in the fact that no lamination is needed, anymore and only a few superelements can predict the vibration behavior of FG cylinders accurately. Several examples are solved based on the new element formulation and the natural frequencies and modeshapes are obtained. Comparison of the findings with the conventional elements reveals time saving and accuracy of the results.
机译:功能梯度材料是由两种或更多种材料成分组成的先进复合材料,该成分被设计成具有连续空间变异性的性质。有一些分析方法可用于解决FGM制造结构的控制式方程,限制为某些特定和有限的形状,装载和边界条件。因此,使用诸如FEM的数值方法用于治疗这些材料。在先前的研究中,通过改变传统的壳体和板元件来使用有限元方法来解决壳体和板等薄壁的FG结构。解决厚壁的FG结构面对一些困难。克服该问题的方法之一是在每个层中的恒定材料特性假设恒定的材料特性,将该问题层压在材料变化方向上。当厚度增加时,应该增加表示FGM的层数以产生准确的结果。增加元素数量意味着很大的时间消耗和所需的存储空间。 FG结构中存在的最常见形状之一是中空圆柱体,其分析如此复杂,其可能无法通过常规元件进行。在这项研究中,选择了一个超级性方法来面对问题。在短时间内有效预测结构行为中的超重设计和应用是过去十年的研究兴趣之一。超级精美设计用于特殊问题,以便它们可以替代大量的传统元素在建模和分析中。在该研究中,新的圆柱形过滤器被整合到模拟功能梯质圆柱体,并且进行模态分析。该圆柱形过度的优点在于,不再需要层压,并且只有少数超级材料可以精确地预测FG气缸的振动行为。基于新的元素配方和自然频率和模式来解决几个例子 获得形状。与传统元素的发现比较显示结果节省和准确性。

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