Methodical Design of a Subframe for a Novel Modular Chassis Concept without Knowledge of Final Vehicle Parameters

IF 0.6 Q4 TRANSPORTATION SCIENCE & TECHNOLOGY SAE International Journal of Commercial Vehicles Pub Date : 2024-01-22 DOI:10.4271/02-17-01-0006
Fabian Weitz, Michael Frey, F. Gauterin
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Abstract

This article presents the methodical development of a subframe for a novel on-the-road-modular vehicle concept, which was developed for the U-Shift project. The subframe serves as the basis for a modular chassis. This chassis offers the possibility to exchange chassis components by the operator, which means after completion by the manufacturer, and thus to adapt the vehicle to different purposes. According to the applied methodology, the relevant wheel loads are determined and a geometric reference model is created. By defining the relevant load cases, the forces acting on the subframe, and thus the physical boundary conditions, can be determined from the wheel loads. In addition to the wheel loads and the geometric boundary conditions, no other vehicle parameters are required for the development of the subframe. The results of the topology optimization are used to identify areas of the geometric reference model that are not exposed to high loads. Based on the results of the topology optimization, a suitable combination of manufacturing processes and suitable materials can also be determined. After the basic topology has been determined, a welded construction is derived from square tubes and plates. Subsequently, excess stresses at critical points are identified in simulation and analysis processes, and constructive changes are made to reduce them. Through validation by simulation of the relevant load cases, a proof of compliance with the physical boundary conditions can be provided. The actually manufactured subframe is presented, and the potential of the modular construction for the development of a chassis modular kit is explained.
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在不了解最终车辆参数的情况下,有条不紊地设计新型模块化底盘概念的副车架
本文介绍了一种用于新型公路模块化车辆概念的副车架的开发方法,该副车架是为 U-Shift 项目开发的。该副车架是模块化底盘的基础。这种底盘可由操作人员更换底盘部件,也就是在制造商完工后更换,从而使车辆适应不同的用途。根据应用的方法,确定了相关的车轮载荷,并创建了几何参考模型。通过定义相关载荷情况,可以根据车轮载荷确定作用在副车架上的力,从而确定物理边界条件。除了车轮载荷和几何边界条件,副车架的开发不需要其他车辆参数。拓扑优化的结果用于确定几何参考模型中不承受高载荷的区域。根据拓扑优化的结果,还可以确定合适的制造工艺组合和合适的材料。基本拓扑结构确定后,方形管和板的焊接结构也随之产生。随后,在模拟和分析过程中确定关键点上的多余应力,并进行结构性修改以减少应力。通过对相关载荷情况进行模拟验证,可以提供符合物理边界条件的证明。本文介绍了实际制造的副车架,并解释了模块化结构在开发底盘模块化套件方面的潜力。
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来源期刊
SAE International Journal of Commercial Vehicles
SAE International Journal of Commercial Vehicles TRANSPORTATION SCIENCE & TECHNOLOGY-
CiteScore
1.80
自引率
0.00%
发文量
25
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