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Static and Vibration Analysis of an Aluminium and Steel Bus Frame

机译:铝和钢客车框架的静振动分析

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The transport sector is increasing day by day to satisfy the global market requirement. The bus is still the main mode of intercity transportation in Canada. Despite, an essentially unchanged conception, the total weight of the bus has increased by over 25% during the last three decades. To solve this problem, industrialists have moved to the use of light metals in the transportation field. Therefore, use of lightweight materials, such as aluminum is essential to reduce the total weight of bus. In this study, the focus is on the bus frame as it represents 30% of the total weight and it is the most stressed part of the bus. Its life duration is more important compared to that of all other elements. Thus, a study of the static and vibratory behavior would be very decisive. In this article, two types of analysis are carried out. First is the modal analysis to determine the natural frequencies and the mode shapes using a developed dynamic model of the bus. Because if any of the excitation frequencies coincides with the natural frequencies of the bus frame, then resonance phenomenon occurs. This may lead to excessive deflection, high stress concentration, fatigue of the structure and vehicle discomfort. In this case, the results analysis shows that the natural frequencies are not affected by the change of material. The second type of analysis is the linear static stress analysis to consider the stress distribution and deformation frame pattern under static loads numerically. For the numerical method, the frame is designed using SolidWorks and the analysis is made using Ansys WorkBench. The maximum Von Mises stress obtained for the static loading is in the same order for the three chassis frames studied. But in the case of the aluminium frame, the weight of 764 kg was reduced.
机译:为了满足全球市场需求,运输部门正日益增长。公共汽车仍然是加拿大城市间交通的主要方式。尽管概念基本上没有改变,但在过去的三十年中,公共汽车的总重量增加了25%以上。为了解决这个问题,工业家已经转向在运输领域中使用轻金属。因此,使用轻质材料(例如铝)对于减轻总线的总重量至关重要。在这项研究中,重点放在公共汽车车架上,因为它代表了总重量的30%,并且是公共汽车中压力最大的部分。与所有其他元素相比,其生存期更为重要。因此,对静态和振动行为的研究将是至关重要的。在本文中,进行了两种类型的分析。首先是模态分析,使用已开发的总线动态模型确定固有频率和模态形状。因为如果任何激励频率与母线架的固有频率一致,则会发生共振现象。这可能导致过度的偏转,高应力集中,结构疲劳和车辆不适。在这种情况下,结果分析表明固有频率不受材料变化的影响。第二种分析是线性静态应力分析,它考虑了静态载荷下的应力分布和变形框架模式。对于数值方法,使用SolidWorks设计框架,并使用Ansys WorkBench进行分析。对于所研究的三个底盘框架,静态载荷下获得的最大冯·米塞斯应力处于相同的顺序。但在铝制框架的情况下,重量减轻了764 kg。

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