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Technical Paper

The Effects of Front Suspension Parameters on Road Wheel Toe Dynamics

2001-03-05
2001-01-0482
Front road wheel toe dynamics directly affects tire wear and steering wheel vibration, which in turn negatively impacts customer satisfaction. Though static toe can be preset in assembly plants, the front road wheels can vibrate around steering axes or kingpin axes due to tire mass unbalance and nonuniformity. The frequency of the vibration depends on the wheel size and vehicle speed, while the amplitude of the vibration is not only dictated by the tire forces, but also by suspension and steering parameters. This paper presents a study on the sensitivities of the front road wheel toe dynamics to the parameters of a short-long-arm suspension (SLA) and a parallelogram steering system. These parameters includes hard point shift, steering gear compliance, gear friction, control arm bushing rates, friction in control arm ball joints, and compliance in tie rod outboard joints.
Technical Paper

Optimum Gap Design And Durability Analysis of Catalytic Converter Assembly

2001-03-05
2001-01-0942
A method to predict gap distribution, can deformation and mounting force of catalytic converter during assembling and operation cycles has been developed using ABAQUS contact algorithm with user subroutine for material properties. Inherent in the methodology is the constitutive model for both vermiculite mat and wire mesh mounting materials, which is able to describe their nonlinear and thermal behaviors and shows good agreement with test results. A design optimization procedure is presented to achieve uniform gap design of can and substrate. The technology will enable engineers to generate robust converter can designs, substrate shape and stamping tools for minimum manufacturing failure rate and maximum durability performance once a mounting material is selected.
Technical Paper

Road Load Simulation Using Effective Road Profile

1997-04-08
971512
This reearch presents a concept using effective road profile to calculate road loads. The method uses existing vehicle road load data, simplified vehicle dynamic model and simple tire model to create effective road profile. Then the simplified vehicle model is updated to reflect the vehicle changes of a new vehicle. Run the simplified new vehicle model to calculate road loads. The application of effective road profile in laboratory simulation is introduced. Preliminary CAE road load simulation using the effective road profile is presented.
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