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Stress Relaxation of a Sport Utility Vehicle Chassis Using a Dynamic Force Counteracting Approach

机译:使用动态力抵消方法应力松弛运动型多功能车辆底盘

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Structural failures in a Chinese sport utility vehicle (SUV) Land-wind X6 chassis were reported in recent years, thus, it is meaningful to conduct trouble-shooting and effective optimization to improve the chassis. Stress relaxation of the Land-wind X6 chassis using a novel dynamic force counteracting approach was carried out in this study. Finite Element Analysis (FEA) model of the chassis was firstly established and theoretical modal analysis was performed using the FEA model, experimental modal analysis was followed to validate the theoretical modal analysis and the FEA model. Further static and local stress analyses demonstrate that irrational designs between the longitudinal beams and the suspension components lead to inadequate stiffness and excessive stress concentrations which would cause fatigue and structural failure when the SUV chassis is subject to complex and severe excitations. A novel dynamic forces counteracting approach was introduced to optimize the chassis structure, FEA results show that excessive stress concentrations were obviously eliminated and the chassis stiffness, especially the torsional stiffness was greatly improved after optimization, followed industrial implementation also verifies that the FEA-based study and product optimization performed in this work are successful and significant.
机译:近年来报道了中国运动型电流车(SUV)陆风X6底盘的结构失败,因此,开展麻烦射击和有效优化以改善机箱是有意义的。在本研究中进行了使用新型动态力抵消方法的陆风X6底盘的应力松弛。第一个建立了机箱的有限元分析(FEA)模型,使用FEA模型进行理论模态分析,遵循实验模态分析,验证理论模态分析和FEA模型。进一步的静态和局部应力分析表明,当SUV底盘受到复杂和严重激发时,纵向梁和悬架部件之间的非理性设计导致刚度和过度应激浓度导致疲劳和过度应激浓度。引入了一种新型动态力抵消方法以优化底盘结构,FEA结果表明,在优化后明显消除了过度的应力浓度,底盘刚度,特别是扭转僵硬,遵循工业实施也验证了基于FEA的研究在这项工作中进行的产品优化成功而且显着。

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