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Technical Paper

The Effect of Contact Surface and Bolt Torque Variations on the Brake Rotor Run-Out

1998-02-23
980596
Deformation of the hub, rotor, and the wheel results in lateral run-out of the rotor. The effect of contact surface variations and bolt forces on the deformation is investigated. It is analytically shown that the run-out due to deformation is caused primarily due to the radial and circumferential moments generated in the hub and the rotor due to bolt tightening. Case studies illustrate the interaction between hub, rotor, and the wheel for various surface conditions. Design guidelines are provided to reduce rotor run-out.
Technical Paper

A Hybrid Road Loads Prediction Method with Full Vehicle Dynamic Simulation

1997-04-08
971513
A hybrid approach to predict road-induced loads in vehicle structures is presented. The technique involves full vehicle dynamic simulation using measured wheel forces, absolute wheel vertical displacements, and steering angle as input. The wheel vertical displacement is derived from the measured wheel acceleration. This approach avoids the use of tire-road interface modeling. It also improves the conventional loads measuring process with minimum instrumentation and data acquisition. Existing load data from a test vehicle is used to validate this approach. Computed component loads show good agreement with measurements.
Technical Paper

An Upfront Analysis Driven Design Process for Product Development

1997-04-08
971539
In the current design process, the designer generates the detailed geometry of the component based on experience. Prototypes of this design are built and tested to verify the performance. This design - build - test iterative process is continued until performance targets/criteria are met. Computer Aided Engineering is often used to verify the design. This paper presents a new product development process to substantially reduce the number of design - analysis - build - test iterations. This Upfront Analysis Driven Design process incorporates several state of the art technologies in finite element structural analysis, optimization, and Computer Aided Design. This process ensures a near optimum design in the first design level itself.
Technical Paper

Powertrain Structural Analysis

1984-04-01
840742
The purpose of this study was to analytically predict the dynamic behavior of a powertrain assembly and provide directions for structural design improvements relevant to durability, optimum weight, NVH characteristics, etc. To achieve this objective, a finite element model of the powertrain assembly was constructed and normal mode analysis was performed with the MSC/NASTRAN finite element computer program. Natural frequencies, mode shapes and modal strain energy densities were computed. Results were post-processed with the MOVIE — BYU color graphics package. An accurate, easy to interpret, presentation of the dynamic results was achieved with color-coded strain energy density animations of the first two eigen-solutions.
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