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A Lightweight Optimization Method of Vehicle Body Structure Design

机译:车身结构设计的轻量化优化方法

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Lightweight body is effective for reducing the concentration of pollutant in emissions, improving crashworthiness performance and dynamic performance. Lightweight Index, which is proportional to body mass and inversely proportional to torsion stiffness, is used to evaluate the lightweight degree of body structure. Lightweight index can be reduced according to increasing torsion stiffness and reducing mass. The calculation of body stiffness is a linear process, which can be simulated by finite element analysis with high precision. In this paper, the torsion stiffness of a vehicle body was studied by using CAE analysis software. After simulation, the lightweight index was calculated according to body mass and torsion stiffness. For the purpose of improving lightweight index, body structure should be optimized to improve torsion stiffness and decrease body weight. At first, using sensitivity analysis, this paper studied the influence of 50 main parts' gauge to torsion stiffness and body weight, these parts thickness were set as variables in optimization. Then, after optimization, by comparing sensitivities of torsion stiffness and body weight, this paper identified key parts of a car body, according to optimizing the gauges of parts, the body weight decreased 3.1 kg, while torsion stiffness increased 38 Nm/deg. Comparing with part thickness, part structure has greater affection to the stiffness property, topography optimization can be used to optimize the design of part structure and shape. In this paper, coat rack structure was studied, through topography optimization to find the best optimized structure with manufacturing requirement. Vehicle parts are designed not only considering stiffness performance, but also taking into account strength, crashworthiness, NVH performance and so on, only body torsion stiffness for study has limitation. Topography optimization can only find optimal part structure, however, manufacturing costs and feasibility should be considered. In this paper, CAE software tools were used to perform sensitivity analysis and optimization, parts gauges were set as variables to optimize body stiffness and weight, and topography optimization was used to optimize rib structure and position of coat rack, which gave a simple way to lightweight body design and optimize.
机译:轻质车身可有效降低排放物中的污染物浓度,提高防撞性能和动态性能。轻量化指数与体重成正比,与扭转刚度成反比,用于评估车身结构的轻量化程度。轻量化指标可以根据增加的扭转刚度和减少质量来降低。车身刚度的计算是一个线性过程,可以通过高精度有限元分析来模拟。本文利用CAE分析软件对车身的扭转刚度进行了研究。经过模拟,根据体重和扭转刚度计算了轻量化指标。为了改善轻量化指标,应优化车身结构以提高扭转刚度并减轻体重。首先,通过灵敏度分析,研究了50个主要零件的规格对扭转刚度和体重的影响,这些零件的厚度被设置为优化变量。然后,在优化后,通过比较扭转刚度和体重的敏感性,确定了汽车关键部位,通过优化零件规格,体重减轻了3.1 kg,而扭转刚度则增加了38 Nm / deg。与零件厚度相比,零件结构对刚度性能的影响更大,可以使用形貌优化来优化零件结构和形状的设计。本文通过对衣帽架的结构进行了研究,通过形貌的优化,找到了符合制造要求的最佳优化结构。车辆零件的设计不仅考虑到刚度性能,而且考虑到强度,耐撞性,NVH性能等,只有用于研究的车身扭转刚度受到限制。拓扑优化只能找到最佳的零件结构,但是,应考虑制造成本和可行性。本文使用CAE软件工具进行灵敏度分析和优化,将零件规格设置为变量以优化车身刚度和重量,并使用形貌优化来优化衣帽架的肋骨结构和位置,这提供了一种简单的方法来轻巧的车身设计和优化。

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