首页> 外文会议>ASME international design engineering technical conferences and computers and information in engineering conference 2014 >USING THE SIMPLE STRUCTURAL BEAM (SSB) MODEL TO OPTIMIZE AND ANALYZE AUTOMOTIVE STRUCTURES FOR BENDING STIFFNESS AND NATURAL FREQUENCY
【24h】

USING THE SIMPLE STRUCTURAL BEAM (SSB) MODEL TO OPTIMIZE AND ANALYZE AUTOMOTIVE STRUCTURES FOR BENDING STIFFNESS AND NATURAL FREQUENCY

机译:使用简单结构梁(SSB)模型优化和分析汽车结构的弯曲刚度和固有频率

获取原文
获取原文并翻译 | 示例

摘要

When designing a vehicle structure, an optimum design is desired because the structure has a significant impact on its performance. The structure impacts other components in the vehicle as well. The designing process usually involves complex iteration. Analyses must be done at the early stage of the vehicle's development (body-in-white) to minimize the amount of parameter changes needed during the late stage of development. Successfully implementing this strategy reduces the time and cost required to develop an effective vehicle structure. A method known as Simple Structural Surfaces can be used to model the vehicle structure as several planar sheets, as well as determine the forces in each sheet. The downside of using this method is that by using it, determining the deflections in the structure is difficult. In order to eliminate this difficulty, the vehicle is modeled as several beam elements instead. In this method, a finite element method is used to numerically solve for the deflections, reaction forces, and internal loading on each element of the structure. This Simple Structural Beam model can be adapted to allow optimization of the static property of the structure bending stiffness. Dynamic properties of the vehicle structure are also examined through vibration analysis, by determining the fundamental natural frequency of the structure. Vibration also has a large impact on the structure's performance. The goal of the research is to obtain a design that will optimize the static and dynamic properties of the vehicle's structure. In the beam elements, the parameters involved are the length, orientation, cross-sectional area, and moment of inertia. The optimizing process is automated and determines the beam dimensions with largest stiffness to weight ratio. The fundamental natural frequency calculated must be distant from the frequency of the engine, as resonance is also a concern for structural performance. Resonance occurs when the natural frequency of the system is equal to the frequency of a connecting component. This increases the amplitude of vibration significantly and is undesirable for any structural design.
机译:在设计车辆结构时,需要最佳设计,因为该结构对其性能有重大影响。该结构也会影响车辆中的其他组件。设计过程通常涉及复杂的迭代。必须在车辆研发的早期阶段(白车身)进行分析,以最大程度地减少研发后期阶段所需的参数更改量。成功实施该策略可减少开发有效车辆结构所需的时间和成本。可以使用一种称为“简单结构曲面”的方法将车辆结构建模为几个平面板,并确定每个板中的力。使用这种方法的缺点是,很难确定结构中的挠度。为了消除这种困难,车辆被建模为多个梁单元。在这种方法中,使用有限元方法对结构的每个元素上的挠度,反作用力和内部载荷进行数值求解。此简单结构梁模型可以进行调整,以优化结构抗弯刚度的静态特性。通过确定结构的基本固有频率,还可以通过振动分析来检查车辆结构的动态特性。振动也会对结构的性能产生很大影响。研究的目的是获得一种可以优化车辆结构的静态和动态特性的设计。在梁单元中,涉及的参数是长度,方向,横截面积和惯性矩。优化过程是自动化的,并确定具有最大刚度与重量比的梁的尺寸。计算的基本固有频率必须与发动机的频率相距较远,因为共振也是结构性能的考虑因素。当系统的固有频率等于连接组件的频率时,就会发生共振。这显着增加了振动幅度,并且对于任何结构设计都是不希望的。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号