Numerical Simulation of Automotive Drive Shaft Using Carbon/Epoxy and Kevlar/Epoxy Composite Materials to Enhance Fatigue Life

IF 0.4 Q4 ENGINEERING, MECHANICAL
D. S. Zeleke, D. E. Tura
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引用次数: 0

Abstract

The impact of the orientation angle and stacking order of the composite material on the torsional strength, buckling, and natural frequency of the drive shaft was demonstrated in a number of investigations. When designing and analyzing various composite materials, carbon/epoxy and Kevlar/epoxy were further looked at for their suitability in terms of torsional strength, torsional buckling, and bending natural frequency of the drive shaft. However, the fatigue life of these materials is not student very well. This, study will analysis the property of carbon/epoxy and Kevlar/epoxy composites automobile drive shaft fatigue life in addition to weight, bending natural frequency and equivalent stresses analysis. Before designing composite materials, the steel drive shaft will be designed and analysis based on weight, torsional strength, torsional buckling, bending natural frequency and fatigue life as a reference for comparison. Then, utilizing a modeling equation, ANSYS 18 and Solid work 16 as a tool, numerical and analytical analysis is carried out. Analytical and numerical results are contrasted as part of the validation process. The driveshaft made of carbon/epoxy composite material greatly reduces the weight of the driveshaft when compared to steel and Kevlar/epoxy drive shafts by comparing both analytical and numerical data. In contrast, the increased number of plies in the Kevlar/epoxy drive shaft gives it a longer fatigue life than the steel, carbon, and epoxy drive shafts. As a result, it is stronger against shearing and buckling loads.

Abstract Image

Abstract Image

使用碳/环氧和凯夫拉尔/环氧复合材料对汽车传动轴进行数值模拟以提高疲劳寿命
摘要 大量研究表明,复合材料的取向角和堆叠顺序对传动轴的抗扭强度、屈曲和固有频率有影响。在设计和分析各种复合材料时,进一步研究了碳/环氧树脂和凯夫拉尔/环氧树脂在传动轴的扭转强度、扭转屈曲和弯曲固有频率方面的适用性。然而,这些材料的疲劳寿命并不十分理想。本研究将分析碳/环氧和凯夫拉/环氧复合材料的特性,以及重量、弯曲固有频率和等效应力分析。在设计复合材料之前,将根据重量、扭转强度、扭转屈曲、弯曲固有频率和疲劳寿命对钢传动轴进行设计和分析,作为比较的参考。然后,利用建模方程 ANSYS 18 和 Solid work 16 作为工具,进行数值分析和分析。作为验证过程的一部分,对分析和数值结果进行了对比。通过对比分析和数值数据,碳/环氧复合材料驱动轴与钢驱动轴和 Kevlar/epoxy 驱动轴相比,大大减轻了驱动轴的重量。相反,与钢传动轴、碳传动轴和环氧传动轴相比,Kevlar/环氧传动轴中增加的层数使其具有更长的疲劳寿命。因此,其抗剪切和屈曲载荷的能力更强。
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来源期刊
CiteScore
0.80
自引率
33.30%
发文量
61
期刊介绍: Journal of Machinery Manufacture and Reliability  is devoted to advances in machine design; CAD/CAM; experimental mechanics of machines, machine life expectancy, and reliability studies; machine dynamics and kinematics; vibration, acoustics, and stress/strain; wear resistance engineering; real-time machine operation diagnostics; robotic systems; new materials and manufacturing processes, and other topics.
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