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Technical Paper

Fatigue Analysis of Automotive Suspension System Considering Dynamic Effect

2003-10-27
2003-01-2814
In this paper, resonance durability analysis is performed for the fatigue life assessment of suspension component considering the dynamic effect of vehicle system. In the resonance durability analysis, the frequency response data and the dynamic load data of frequency domain are used. The multi-body dynamic analysis, finite element analysis and fatigue life prediction method are applied for the resonance durability analysis. To obtain the dynamic load history, the computer simulations running over typical pothole and Belgian road are carried out respectively by utilizing multi-body dynamic vehicle model. The durability estimation for the rear suspension system of the small-sized passenger car is performed by using the resonance durability analysis technique, and the estimation result is compared with the quasi-static durability analysis result. The study shows that the fatigue life considering the resonance frequency of vehicle system can be effectively estimated in early design stage.
Technical Paper

A Study on Optimum Design for Thin Walled Beam Structures of Vehicles

2002-07-09
2002-01-1987
In this paper, an optimization technique for thin walled beams of vehicle body structure is proposed. Stiffness of thin walled beam structure is characterized by the thickness and typical section shape of the beam structure. Approximate functions for the section properties such as area, area moment of inertia, and torsional constant are derived by using the response surface method. The approximate functions can be used for the optimal design of the vehicle body that consists of complicated thin walled beams. A passenger car body structure is optimized to demonstrate the proposed technique.
Technical Paper

Design Optimization of the Pillar Joint Structures Using Equivalent Beam Modeling Technique

1997-04-08
971544
Low frequency vibration characteristics of a vehicle are mainly influenced by the stiffnesses of the beam type structures such as pillars and rockers, and by the stiffnesses of the joint structures, at which several beam structures are jointed together. In the early design stage of the car body structure a simple FE model has been used, in which joints are modeled as linear springs to represent the stiffnesses of the joint structures. In this paper a new modeling technique for the joint structure is presented using an equivalent beam, instead of using a spring. The modeling technique proposed is utilized to design optimal joint structures that meet the required vibration performance of the total vehicle structure.
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