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Determination of Natural Frequencies through Modal and Harmonic Analysis of Space Frame Race Car Chassis Based on ANSYS

机译:基于ANSYS的空间框架赛车底盘模态与谐波分析确定自然频率

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摘要

Space frame chassis the preferred choice of chassis design due to its low cost, high strength, lightweight and safe qualities, which made it suitable for a single-seat race car application and an important aspect in the construction of the space frame race car chassis. Key sections of a space frame race car chassis consist of front and main hoops, side impact protection and crush zone sub-frame. These sections are pivotal in the safety aspect of the driver during emergency situation. This research introduces several methods of dynamic analysis to investigate the mode shape and natural frequencies in the chassis structure. Two methods are mainly used in the study, modal analysis and harmonic analysis with both analyses are performed using Finite Element (FE) method through Finite Element Analysis (FEA) software packaged, ANSYS v13 APDL Mechanical. The study identified five mode shapes extracted using Block Lanczos method, all mode shapes vibrated at a frequency above 150 Hz with the characteristic of each mode shapes is further explained in this study. Amplitude vs. frequency graph is generated from harmonic analysis is utilised to determine the resonance frequency. The highest amplitude occurred in the third natural frequency with an amplitude of 0.375 mm. The outcome of this analysis can be used as a reference in improving the chassis design and performance against dynamic behaviour of the structure by introducing stiffener on part of the chassis imposed with the highest displacement.
机译:空间框架底盘由于其低成本,高强度,轻便和安全的特性而成为底盘设计的首选,这使其适合于单座赛车应用,并且是空间框架赛车底盘构造中的重要方面。太空车赛车底盘的关键部分包括前环和主环,侧面防撞保护装置和压区副车架。在紧急情况下,这些部分对于驾驶员的安全性至关重要。本研究介绍了几种动力学分析方法,以研究底盘结构中的振型和固有频率。本研究中主要使用两种方法,模态分析和谐波分析,这两种分析都是通过有限元分析(FEA)软件,ANSYS v13 APDL Mechanical软件包使用有限元(FE)方法进行的。该研究确定了使用Block Lanczos方法提取的五个模态形状,在此研究中进一步解释了所有以150 Hz以上的频率振动的模态形状,并具有每种模态形状的特征。通过谐波分析生成幅度与频率的关系图,以确定共振频率。最高振幅出现在第三固有频率中,振幅为0.375 mm。该分析的结果可作为参考,可通过在具有最大位移的部分底盘上引入加劲肋来改善底盘设计和抵抗结构动态性能的性能。

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