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Journal Article

Development of Virtual Road Wheel Input Forces for Belgian Ground

2014-04-01
2014-01-0381
Numerical durability analysis is the only approach that can be used to assess the durability of vehicles in early stages of development. In these stages, where there are no physical prototypes available, the road wheel forces (or spindle forces) for durability testing on Belgian PG (Proving Ground) must be predicted by VPG (Virtual Proving Ground) or derived from the measured forces of predecessor vehicles. In addition, the tuning parts and geometry are not fixed at these stages. This results in the variation of spindle forces during the development stages. Therefore, it is not reasonable to choose the forces predicted at a specific tuning condition as standard forces. It is more reasonable to determine the standard forces stochastically using the DB of the measured forces of predecessor vehicles. The spindle forces measured or predicted on Belgian PG are typically stationary random.
Technical Paper

An integrated Approach to the Development of Suspension Rubber Bushings

2006-04-03
2006-01-1623
The recent improvement in CAE technology of vehicle structure could reduce the new vehicle development time. Moreover, it can help to reduce the test time of prototypes. The finite element analysis (FEA) has been proved for long time by many experiments in developing a new vehicle. However, the FEA has been applied mainly on metal structures such as steel and aluminum. The fatigue analysis could not successfully apply on the rubber insulator or bushing until now. Moreover, the more difficult thing is the identification of the applied loads on rubber bushings in all kinds of control arms. In this paper, the virtual testing laboratory (VTL) technology and load measuring techniques are integrated for identifying dynamic loads and torsional deformation of suspension bushings in a proving ground (PG). This paper presents the efficient rig-test of suspension bushings as the applied loading patterns.
Technical Paper

Virtual Testing and Correlation with Spindle Coupled Full Vehicle Testing System

2006-04-03
2006-01-0993
This paper describes an approach to simulate spindle coupled full vehicle durability tests for the purpose of completing virtual durability evaluations on components and full vehicles before a prototype is available. The reproduction of measured spindle loads was achieved on a virtual model of a passenger car coupled to a 4 Degree of Freedom (DOF) and 6 DOF spindle coupled test system. The tools and process improvements developed here will aid both test and analysis engineers in working closer together in solving their durability problems. By using Remote Parameter Control® (RPC®) technology in the virtual world, analysts have a new method to understand the virtual model by reproducing field-measured or generic road predicted signals for a variety of road surfaces. With newly created test rig models and a user friendly RPC™ iteration process, virtual testing that accurately replicates laboratory tests are now a reality.
Technical Paper

Integration of Physical and Virtual Tools for Virtual Prototype Validation and Model Improvement

2003-10-27
2003-01-2813
Hyundai Motor Company has combined physical and virtual testing tools to validate a full vehicle virtual prototype. Today a large number of physical tests are still required because the cycle of “design-build-test-change” relies on complex models of components and systems that typically are not easily validated. In order to shorten the development cycles, engineers perform multi-body simulations to dynamically excite components and systems and thereby estimate their durability under dynamic loads. The approach described herein demonstrates the feasibility of correlating the output from the corresponding physical and virtual prototype. Both synthetic and road load events are employed to excite physical and virtual vehicles, reveal difference in response, and ultimately improve the predictive capability of the model.
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