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Technical Paper

High Frequency Sloshing - Energy Dissipation and Viscous Damping through CFD

2017-03-28
2017-01-1317
Liquid sloshing is an important issue in ground transportation, aerospace and automotive applications. Effects of sloshing in a moving liquid container can cause various issues related to vehicle stability, safety, component fatigue, audible noise and, liquid level measurement. The sloshing phenomenon is a highly nonlinear oscillatory movement of the free-surface of liquid inside a container under the effect of continuous or momentarily excitation forces. These excitation forces can result from sudden acceleration, braking, sharp turning or pitching motions. The sloshing waves generated by the excitation forces can impact on the tank surface and cause additional vibrations. For the loads with the frequencies between 2 to 200 Hz, the structural fatigue failure is a major concern for automotive applications.
Technical Paper

Thermoplastic Enclosure for a High Voltage Battery System

2017-03-28
2017-01-1190
As electrified powertrains proliferate through original equipment manufacturer vehicle offerings, the focus on system cost and weight reduction intensifies. This paper describes the development and evaluation of a High Voltage (HV) battery system enclosure molded from High Density Polyethylene (HDPE) to deliver substantial cost and weight opportunities. While previous HV battery system enclosure alternatives to steel and aluminum focus on thermoset composites and glass filled polypropylene, this solution leverages select HDPE design techniques established for fuel tanks and applies them to an HV battery system. The result is a tough, energy absorbing structure, capable of hermetic sealing, which simplifies manufacturing by eliminating nearly all fasteners.
Technical Paper

Comprehensive Modeling of Automotive Ignition Systems

2007-04-16
2007-01-1589
This paper presents a comprehensive approach to improve the analysis and design process of automotive ignition coils. The delivered voltage and energy of the coil to the spark plug load are the two essential requirements placed on a coil design. The prediction of these two quantities, derived from the simulated transient secondary current and voltage, is fundamental to the design process and allows early assessment of design robustness. With only the data required for electromagnetic finite element analysis (FEA), including material loss data, the magnetic and electrostatic interactions among the coil laminations and windings can be modeled. These field computations are converted to equivalent circuit elements employed in a systems model. The systems model allows the calculation of requisite transient signals. This approach is highly flexible and gives fast simulations.
Technical Paper

A Computer Aided Optimization Tool to Design Electromagnetic Retarders

2004-03-08
2004-01-0382
The work presented here outlines the development of a robust CAO tool for optimal design of electromagnetic retarder machines. The developed EM-CAO tool is then used to perform a wide variety of CAE/CAO tasks, from automatically computing the torque versus rpm performance curves of the EM retarder to performing optimization. Two specific examples of optimal design of the EM retarder are reported. Through the use of a task manager/optimizer repetitive jobs are fully automated thereby making the analysis and optimization of electromagnetic retarders faster and user-friendlier.
Technical Paper

Optimization and Robust Design of Heat Sinks for Automotive Electronics Applications

2004-03-08
2004-01-0685
The increasing power requirement for automotive electronics (radios, etc.), combined with ever-shrinking size and weight allowances, is creating a greater need for optimization and robust design of heat sinks. Not only does a heat sink directly affect the overall performance and reliability of a specific electronics application, but a well-designed, optimized heat sink can have other benefits - such as eliminating the requirement for special fans, reducing weight of the application, eliminating additional heat sink support structures, etc. Optimizing heat sink efficiency and thermal performance offers a challenge, due to the many competing design requirements. These requirements include effecting greater temperature reductions, accommodating vehicle packaging requirements and size limitations, generating a uniform heat distribution, etc., and all the while reducing the heat sink cost.
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