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Technical Paper

Expanding the Application of Magnesium Components in the Automotive Industry: A Strategic Vision

2007-04-16
2007-01-1033
There is an increasing global realization about the need for fuel efficient vehicles. An inexpensive way to accomplish this is through mass reduction, and one of the most effective ways that this can occur is through substituting current materials with magnesium, the lightest structural metal. This document describes the results of a U.S. Automotive Materials Partnership (USAMP) sponsored study [1] that examines why magnesium use has only grown 10% per year and identifies how to promote more widespread commercial applications beyond the 5-6 kg of component currently in vehicles. The issues and concerns which have limited magnesium use are discussed via a series of research and development themes. These address concerns associated with corrosion, fastening, and minimal metalworking/non-traditional casting processing. The automotive and magnesium supplier industries have only a limited ability to develop implementation-ready magnesium components.
Technical Paper

A Computational Approach to Evaluate the Vehicle Interior Noise from Greenhouse Wind Noise Sources

2010-04-12
2010-01-0285
For most car manufacturers, aerodynamic noise is becoming the dominant high frequency noise source (≻500 Hz) at highway speeds. Design optimization and early detection of issues related to aeroacoustics remain an experimental art implying high cost prototypes, expensive wind tunnel sessions, and potentially late design changes. To reduce the associated costs as well as development times, there is strong motivation for the development of a reliable numerical prediction capability. This paper presents a computational approach that can be used to predict the vehicle interior noise from the greenhouse wind noise sources, during the early stages of the vehicle developmental process so that design changes can be made to improve the wind noise performance of the vehicle.
Technical Paper

Wrought Magnesium Components for Automotive Chassis Applications

2011-04-12
2011-01-0077
Automotive structural components are exposed to high loads, impact situations and corrosion. In addition, there may be temperature excursions that introduce creep as well as reduced modulus (stiffness). These issues have limited the use of light metals in automotive structural applications primarily to aluminum alloys, and primarily to cast wheels and knuckles (only a few of which are forged), cast brake calipers, and cast control arms. This paper reports on research performed at Chongqing University, Chongqing China, under the auspices of General Motors engineering and directed by the first author, to develop a protocol that uses wrought magnesium in control arms. The goal was to produce a chassis part that could provide the same engineering function as current cast aluminum applications; and since magnesium is 33% less dense than aluminum, would be lighter.
Technical Paper

Acceleration Noise Metric for Vehicles with CVT Transmission

2011-04-12
2011-01-0150
In recent years, Continuously Variable Transmissions (CVTs) have made significant inroads into passenger cars because of advantages over traditional Automatic Transmissions (ATs) such as improved efficiency, reduced weight and smoother operation. However, from an acceleration sound quality perspective, drivers generally seem to prefer the AT sound over the CVT sound, especially in sub-compact/compact vehicle segment with small displacement engines and cost-conscious sound packaging. Vehicles equipped with ATs maintain a linear relationship between vehicle speed and engine RPM during wide-open throttle (WOT) acceleration that is dictated by fixed gear ratios. Vehicles with CVTs typically rise rapidly to a high engine RPM (near peak engine torque) and then dwell at a constant engine RPM as the vehicle speed continues to increase by varying CVT pulley ratios.
Technical Paper

Accurate Simulation of Door Side Intrusion in Automotive Structures with Progressive Fracture

2011-04-12
2011-01-1070
Door side intrusion (FMVSS 214, Static) is a quasi-static test to determine the sufficiency of door strength and integrity of its mounting in the event of side impact. Explicit nonlinear solutions are often adapted for simulating the side intrusion test performance using the finite element method. The side intrusion performance involves intense rupture at panels as well as their connections such as spot welds, bolts and hems. The load path changes significantly with the material fracture in the panels and at their connections. Conventional finite element models assuming no material separation cannot capture such load path changes and cannot recognize the associated loss in structural integrity. Accordingly, the conventional nonlinear finite element analysis tends to over-predict the intrusion strengths by a large margin and fails to predict the potential separation of the door from the body at the latch and hinge connections.
Technical Paper

Accurate FEA Predictions for Roof Crush Performance of Automotive Structures

2011-04-12
2011-01-1063
The ability to accurately predict roof crush strength as well as the timing of structure intrusion is of great importance in the enhancement of the automotive roof design. Roof crush performance is a complex nonlinear phenomenon involving large-scale deformations and strains with many structural parameters influencing the performance. FMVSS216 testing is being used as an industry standard to determine the sufficiency of body structure strength against a stipulated roof crush load. In this paper, sensitivity of roof crush strength and stiffness predictions in a finite element simulation of FMVSS216 testing condition is studied systematically. Various physical parameters and their mathematical representation in finite element simulations are examined for their contribution to body structure strength as well as stiffness against roof crush loads.
Technical Paper

Communication Requirements for Plug-In Electric Vehicles

2011-04-12
2011-01-0866
This paper is the second in the series of documents designed to record the progress of a series of SAE documents - SAE J2836™, J2847, J2931, & J2953 - within the Plug-In Electric Vehicle (PEV) Communication Task Force. This follows the initial paper number 2010-01-0837, and continues with the test and modeling of the various PLC types for utility programs described in J2836/1™ & J2847/1. This also extends the communication to an off-board charger, described in J2836/2™ & J2847/2 and includes reverse energy flow described in J2836/3™ and J2847/3. The initial versions of J2836/1™ and J2847/1 were published early 2010. J2847/1 has now been re-opened to include updates from comments from the National Institute of Standards Technology (NIST) Smart Grid Interoperability Panel (SGIP), Smart Grid Architectural Committee (SGAC) and Cyber Security Working Group committee (SCWG).
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