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首页> 外文期刊>Transportation Research Procedia >New Approach for a Comprehensive Method for Urban Vehicle Concepts with Electric Powertrain and their Necessary Vehicle Structures
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New Approach for a Comprehensive Method for Urban Vehicle Concepts with Electric Powertrain and their Necessary Vehicle Structures

机译:带有电动动力总成及其必需的车辆结构的城市车辆概念综合方法的新方法

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Due to the strict discussions regarding energy saving and the goal to reduce CO2emissions to 95 g CO2/km, specified for the year 2020 (BUMD, 2009), there is a strong demand for lighter and lightweight design automotive structures to support the energy saving targets. In view of a holistic approach, and to prospectively meet the requirements of the automotive sector, economic and production-orientated aspects, as well as joining technologies within the scope of multi-material design must also be considered to achieve a great leap towards medium to large-scale production.To accomplish these goals, a comprehensive method for urban vehicle concepts with electric powertrain and their necessary vehicle structures is presented. The dimensions and packaging of the presented vehicle are based on demands of a future urban vehicle with a four-passenger capacity that includes baggage, steerable front system wheels and a rear axle with an electric powertrain. At the beginning of the method, the relevant user requirements, e.g. space for occupants and baggage and range for the urban vehicle, are defined. In addition, input variables are discharged through state-of-the-art electric vehicles. In this step, it is important to consider additional requirements, such as crash requirements or requirements for electrical components in the vehicle design. With the defined requirements, the package of the urban car has to be defined. Two paths are determined to a geometrically and a simulative way. The simulative consideration is limited to the vehicle longitudinal dynamics; thus, a rough dimensioning of the drive components is derived. The outputs of the simulation are the performance measures, which are converted into components for the overall model to dimension, for example, the electric motor or battery.The geometric design phase begins with the positioning of the occupants in the passenger compartment and the ergonomic layout. Based on this conception of the complete vehicle, various FEM optimisations (topology, topography, size) are carried out for the body in white, in order to construct structures for individual (functional) components/modules. This top-down approach gives the opportunity to obtain constructive innovations, which must be integrated within this early concept phase, also to reduce costs when aiming to develop a series product. With this holistic approach, a load-specific optimised structural design is generated virtually and evaluated, and an outlook on dynamic loads (crash behaviour) is also given. The focus here is on the potential for innovations by the definition of novel package alignments in combination with the useful application of multi-material-design methods, resulting in a light modular vehicle structure.
机译:由于对节能的严格讨论以及将2020年指定的CO2排放量减少至95 g CO2 / km的目标(BUMD,2009年),对支持轻型和轻型设计的汽车结构有强烈的需求,以支持节能目标。考虑到整体方法,并且为了满足汽车行业的需求,还必须考虑以经济和生产为导向的方面以及在多材料设计范围内的连接技术,以实现向中型到大型的飞跃。为了实现这些目标,提出了一种具有电动动力总成的城市车辆概念及其必要的车辆结构的综合方法。所展示车辆的尺寸和包装是基于未来的城市交通需求,该城市车辆具有四人同行的能力,其中包括行李,可转向的前系统车轮和带有电动动力总成的后轴。在方法开始时,相关的用户要求,例如定义了用于乘员和行李的空间以及用于城市车辆的范围。此外,输入变量通过最新的电动汽车排出。在此步骤中,重要的是要考虑其他要求,例如碰撞要求或车辆设计中对电气组件的要求。根据定义的要求,必须定义城市汽车的包装。确定两条路径以几何方式和模拟方式。模拟考虑仅限于车辆纵向动力学;因此,得出了驱动部件的粗略尺寸。模拟的输出是性能指标,这些指标被转换为整个模​​型的各个组成部分,例如电动机或电池等尺寸。几何设计阶段始于乘客在乘员舱中的位置和人机工程学布局。基于完整车辆的这一概念,对白色车身进行了各种FEM优化(拓扑,地形,尺寸),以构造用于各个(功能)组件/模块的结构。这种自上而下的方法使人们有机会获得建设性的创新,必须将其整合到此早期概念阶段,并在开发系列产品时降低成本。通过这种整体方法,可以虚拟生成并评估特定于负载的优化结构设计,并给出动态负载(碰撞行为)的前景。这里的重点是通过定义新颖的包装对齐方式并结合多种材料设计方法的有用应用来实现创新的潜力,从而实现轻型模块化车辆结构。

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