Engineering College, King Abdulaziz University, Jeddah, Saudi Arabia.
J Appl Biomater Funct Mater. 2022 Jan-Dec;20:22808000221089774. doi: 10.1177/22808000221089774.
The use of smart and advanced composite materials instead of conventional metals is foreseen in material sciences due to the development of novel manufacturing techniques. In this regard, a novel type of composite materials "functionally graded materials (FGM)" has attained great attention owing to their intrinsic mechanical characteristics. FGM have been the focus for researchers for analytical formulation, static structural (large deformation, material nonlinearity) analysis as well as for dynamic analysis on simple beams and on structure having non-uniform tapered rectangular profile considering different boundary conditions. No focus is made to thin structure having non-uniform circular cross-sections. This study aims to deal with analyzing the "dynamic behavior of thin circular non-uniform truncated conical section" which is mostly used for manufacturing of fishing rod. This works primarily compares the static, modal, and harmonic analysis under the application of loads of 50 N acting on fishing rod made up of conventional steel, composite (carbon fiber) steel, and functionally graded material (FGM) with the help of ANSYS. Firstly, static analysis performed to analyze the structural behavior under the application of static loadings. After that modal analysis performed and first five modes selected for Steel; from 0 to 600 Hz, for Carbon Fiber; from 0 to 850 Hz and for FGM; from 0 to 900 Hz for harmonic analysis. Maximum defection at resonance for steel is 7.94 mm, for composite is 74.4 mm, and for FGM is just 0.032 mm. The comparison of these results clearly depicts that FGM is having excellent vibration suppression performance as compared to other two materials under consideration. This confirms that thin structure (non-uniform circular profile) made of FGM can be used efficiently for the intended applications in future.
由于新型制造技术的发展,预计在材料科学中会使用智能和先进的复合材料来替代传统金属。在这方面,一种新型的复合材料“梯度功能材料(FGM)”由于其固有机械特性而引起了极大的关注。由于其固有机械特性,FGM 一直是研究人员关注的焦点,他们对其进行了分析公式、静态结构(大变形、材料非线性)分析以及简单梁和具有非均匀渐缩矩形轮廓的结构的动力分析,同时也考虑了不同的边界条件。对于具有非均匀圆形横截面的薄壁结构则没有进行关注。本研究旨在分析“具有非均匀圆形非截锥形截面的薄壁结构的动态行为”,这种结构主要用于制造鱼竿。这项工作主要通过 ANSYS 比较了作用在由传统钢、复合材料(碳纤维)钢和功能梯度材料(FGM)制成的鱼竿上的 50N 载荷下的静态、模态和谐波分析。首先,进行静态分析以分析静态载荷作用下的结构行为。然后进行模态分析,并选择前五个模式进行钢的分析,频率范围从 0 到 600Hz;进行碳纤维的分析,频率范围从 0 到 850Hz;进行 FGM 的分析,频率范围从 0 到 900Hz。钢的共振时的最大挠度为 7.94mm,复合材料的最大挠度为 74.4mm,而 FGM 的最大挠度仅为 0.032mm。这些结果的比较清楚地表明,与考虑的其他两种材料相比,FGM 具有出色的振动抑制性能。这证实了由 FGM 制成的薄壁结构(非均匀圆形轮廓)在未来的预期应用中可以有效地使用。