标题: | 探讨不同纤维排列下复合材料之机械行为 Investigating the mechanical behaviors of fiber composites with different fiber arrays |
作者: | 齐扬楷 Yang-Kai Chi 蔡佳霖 Jai-Lin Tsai 机械工程学系 |
关键字: | 纤维复合材料;正方型排列;对角线排列;六角形排列;热残留应力;阻尼效应;fiber composites;square edge packing;square diagonal packing;hexagonal packing;thermal residual stress;damping capacity |
公开日期: | 2006 |
摘要: | 本研究目的在于探讨纤维复合材料在不同纤维排列情况下对其机械性质之影响,而主要探讨的几何排列分为下列三种,正方型排列(SEP),对角线排列(SDP),六角形排列(HP)。本论文将对此三种不同排列之纤维复合材料做以下探讨,热残留应力对于不同纤维排列之复合材料其非线性机械行为之影响,以及不同纤维排列下复合材料之阻尼响应。在模拟纤维复合材料时,将取出一代表性单元体(Representative Volume Element, RVE)进行分析,进而推求出整体纤维复合材料之机械性质。在材料特性方面,纤维部份假设为线弹性且具低阻尼特性,而基材部份则假设为非线性且具高阻尼特性。在热残留应力对机械性质之非线性影响的分析里,利用Paley以及Aboudi [1]所提出的微观力学广义网格法 (Generalized Method of Cells, GMC),来做纤维以及基材的热残留应力分析。再经由数值上的运算,建构出含有热残留应力之纤维复合材料的应力应变关系。分析结果显示,相较于对角线纤维排列,热残留应力对六角形及正方型纤维排列之机械性质之影响,来的轻微了许多。 对于不同纤维排列之复合材料对其阻尼影响的分析中,于代表性单元体上分别施以相对于材料主轴方向的单轴载重或是剪力,利用微观力学广义网格法,推求纤维复合材料主轴方向的应变能及其相对应的应变能消散量。藉由应变能消散概念,计算出纤维复合材料位于各材料主轴方向上的阻尼参数。从有限单元的分析方法,首先求出纤维复合材料所构成的杆或平板结构,分别在自由边界 (free-free) 以及一端固定 (clamp-free)的情况下,其自由震动振动模态之变形;并结合材料主轴方向上之阻尼系数以及振动模态之变形,即可求得在不同纤维几何排列下,对于不同结构的模态振动阻尼效应(Damping Capacity) 。由分析结果可观察出,在由对角线排列所构成的杆或平板之复合材料结构上,在前三个振动的模态中,所求得之阻尼效应,分别大于另外两种纤维排列。 This study aims to investigate the effect of fiber array on the mechanical responses of fiber composites. Basically three different fiber arrays, i.e., square edge packing (SEP), square diagonal packing (SDP), and hexagonal packing (HP), were considered in the analysis. The sensitivities of thermal residual stress on the nonlinear constitutive behaviors as well as the damping behaviors of the composites with different fiber arrays were the focus of the research. The representative volume element (RVE) containing fiber and matrix phase was employed to describe the overall mechanical behaviors of fiber composites. For the fiber phase, it was assumed to be a linear elastic material with low damping capacity, whereas the matrix was a nonlinear material with high damping capacity. The generalized method of cell (GMC) micromechanical model originally proposed by Paley and Aboudi [1] was extended to include the thermal-mechanical behavior, from which the thermal residual stress within the fiber and matrix phases was calculated. Through a numerical iteration, the constitutive relations of the composites in the presence of residual stress were established. Results show that for the composites with square edge packing, the mechanical behaviors are affected appreciably by the thermal residual stress. On the other hand, the composites with hexagonal packing and square diagonal packing are relatively less sensitive to the thermal residual stress. Regarding the damping behaviors of the composites, the RVE was subjected to a simple loading (either axial or pure-shear loading), and the corresponding damping properties of the fiber composites with respect to the material principal directions were calculated from the GMC analysis together with the energy dissipation concept. With the assistance of FEM analysis, the mode shapes of composite rod and plate structures with vibration under free and clamp boundary conditions were determined. In conjunction with the model shape and the damping properties, the damping capacity of the composite structures constructed based on unidirectional composites with different fiber arrays were calculated. It was found that, in both composite structures, the square diagonal packing always exhibits better damping performance rather than other two fiber arrangements at first three vibration modes. |
URI: | http://140.113.39.130/cdrfb3/record/nctu/#GT009414590 http://hdl.handle.net/11536/80989 |
显示于类别: | Thesis |
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