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Technical Paper

The Virtual Stiffness Profile - A Design Methodology for Pedestrian Safety

2002-07-09
2002-01-2119
European car manufacturers and suppliers are currently stepping up the effort to develop solutions to meet pedestrian safety requirements, which will come into effect, starting in 2005. Numerous concepts, both active and passive, are being investigated to fulfil the pedestrian safety specifications, in addition to the many other limitations imposed on the front end of the car. All of them deal with the topic of energy absorption. Here, an approach to achieving a passive solution will be presented, describing the development of the ‘Virtual Stiffness Profile’ (VSP) to help identify the optimum balance of engineering and styling to meet the requirements. In this paper, specific emphasis is placed on the lower leg impact.
Technical Paper

Polyurethane Foam Systems For NVH and Improved Crashworthiness

2001-04-30
2001-01-1467
Recently, automotive engineers have been looking at rigid polyurethane foam systems for the advantages their application brings to vehicle design and performance. The benefits range from NVH management achieved through effective body cavity sealing and improved structural dynamics, to enhanced vehicle crashworthiness. These benefits can be realized through application of polyurethane foam systems designed for energy management. These systems offer multifunctional, low cost solutions to traditional approaches and can be modeled early in the vehicle design stage. In many cases, the overall vehicle mass is reduced as reinforcements are eliminated and/or sheet metal thickness is decreased. Dow Automotive has developed a family of water blown polyurethane foams specifically for these applications. Development has focused on foam systems designed for impact optimization, allowing OEM's to optimize the body structure content.
Technical Paper

Polyurethane Foam Inserts for NVH and Structural Applications

2004-03-08
2004-01-0461
The application of two-component polyurethane (PU) foam materials for acoustical and structural performance enhancements in vehicle structures have increased significantly in the past ten years. The benefits include NVH management (through effective cavity sealing), body stiffness improvements and energy management in crash applications. These PU foams can either be pumped into body cavities in the OEM assembly plants (bulk applied) or can be pre-molded into Structural Foam Inserts (SFI) and installed in the body-shop prior to full frame assembly. The choice of application type depends on vehicle-specific requirements and assembly plant criteria. The chemistry, plant application and benefits associated with bulk PU foam has already been cited in previous work.1, 2, 3 This paper showcases BETAFOAM™ SFI technology developed by Dow Automotive that complements traditional bulk foam technology.
Technical Paper

Material Model Development for Impact Analysis of Oriented Polypropylene Foam Structures

2001-03-05
2001-01-0310
Federal legislation for head impact protection in upper automotive interiors (FMVSS 201U) has presented a unique energy management problem for the automotive industry. Due to extremely tight packaging conditions, energy absorbers are required to have efficiencies which exceed those of traditional foam materials, and force the development of new methods of energy absorption. The push toward shortened design cycle times has required the use of predictive engineering tools such as finite element analysis. Predictive tools which can accurately drive design direction reduce design cycle times, costs associated with multiple prototype part builds, and costs associated with physical testing. Over the last few years, the inclusion of FMVSS 201U energy absorbing countermeasures in the upper interior trim has been largely experimental in nature, yielding solutions which are costly in both time and money.
Technical Paper

Impact of Plastics on Automotive Applications and Their Role in Enabling Technology Innovation

2000-12-01
2000-01-3164
Automotive manufacturers are driving for improvement, creativity and innovation in vehicle systems in order to differentiate products in the global market. Progress in fuel efficiency, occupant safety, comfort, recyclable friendly pre-assembled modular systems, and novel manufacturing methods is difficult to achieve if no major departure from the traditional design, engineering, material mix, and assembly approaches is considered. More importantly, these benefits will not materialize unless the relationship between automotive manufacturers and suppliers changes, allowing suppliers to take a more active role in the vehicle development process. The present paper explores achievements made towards the development of new, innovative technologies to address simplification and overall performance improvements using non-traditional materials.
Technical Paper

Identification of Key Vehicle Parameters for Pedestrian Impact Safety

2005-10-23
2005-26-320
Pedestrians forming the most important casualty of road accidents, European countries have brought in new laws for vehicles to be made safer for pedestrian impacts. The needs of pedestrian safety are different from current requirements such as low speed or insurance impacts. To fulfill both traditional vehicle to vehicle and pedestrian safety requirements, design changes are needed to find a good balance. However, design limitations are imposed in order to conserve the styling and aesthetics of the front end, which define the image and often handling/aerodynamics of the car. Thus, numerous boundary conditions, both mechanical and non-mechanical, should be taken into account during the implementation of pedestrian safety solutions. This study breaks out part of vehicle front profile, which can be explicitly given values. These values have been based on 2-D simulations conducted across four vehicle categories available in the Indian scenario.
Technical Paper

Development of an Aged Tire Durability Standard - Reinflation Study for Accelerated Laboratory Aging

2008-04-14
2008-01-1491
In the work leading to the TREAD Act, some members of Congress expressed the need for some type of aging test on light vehicle tires. Since no industry-wide recommended practice existed, the ASTM F09.30 Aged Tire Durability task group was established in 2002 to develop a test standard. During the first phase of development, it was found that the process of oxidative aging depleted the level of oxygen in some tires below the point at which aging could effectively continue. Therefore, in the second phase, a research module was formulated to determine the most appropriate method by which to maintain the oxygen concentration in the tire at a sufficiently high level. The research encompassed the evaluation of test data from laboratory aged tires whose oxygen concentration was kept elevated either through a top-off method or a vent/reinflate method. This presentation focuses on the analyses conducted to determine the appropriate method by which to maintain oxygen concentration in the tire.
Technical Paper

Automotive Roof Crush, Structural Foam Enhancement Solution

2009-04-20
2009-01-0371
Vehicle rollover is a rare event on roads, compared to other types of crashes. According to National Highway Traffic Safety Agency, USA (NHTSA), rollovers account for only 3% of crashes in a year [1]. However, one third of the fatalities occur during a rollover and the numbers of such fatalities exceed over 10,000 per annum. The fatality and the injury rate makes rollover crash an important issue in vehicle safety. As part of reducing risk of death and serious injury from rollover crashes, a proposal has been made to upgrade FMVSS No. 216, Roof Crush Resistance [2]. This upgraded regulation mandates the increase in peak load carrying capacity of the vehicle structure from 1.5 times vehicle weight to 2.5 times vehicle weight. As such, the manufacturers are required to comply to this norm even with their existing vehicles. This necessitates a change in structural design of the vehicle to be able to withstand the additional load bearing capacity.
Technical Paper

Acoustic and Structural Treatment of Body-in-White

2000-12-01
2000-01-3167
Automotive body structures are developed to meet vehicle performance requirements primarily based on ride and handling, crashworthiness, and noise level targets. The body is made of a multitude of sheet metal stampings welded together. Other closures such as fenders, hood, doors and trunk lid are developed to match body interfaces, to contribute and participate in the overall vehicle response, and to meet the sub-system and system structural requirements. In order to improve performance and achieve weight reduction of the overall vehicle steel structure, new polymeric materials and treatment strategies are available to body structural engineers to optimize the response of the vehicle and to tune vehicle performance to meet specified functional requirements. If early integrated to the design cycle, these materials help not only improve the structural body response, but also decrease the weight of the integrated body structure.
Technical Paper

2002 Pontiac Montana Frequency Improvements Employing Structural Foam

2001-04-30
2001-01-1609
This paper documents a joint development process between General Motors and Dow Automotive to improve primary body structure frequencies on the GM family of midsize vans by utilizing cavity-filling structural foam. Optimum foam locations, foam quantity, and foam density within the body structure were determined by employing both math-based modeling and vehicle hardware testing techniques. Finite element analysis (FEA) simulations of the Body-In-White (BIW) and “trimmed body” were used to predict the global body structure modes and associated resonant frequencies with and without structural foam. The objective of the FEA activity was to quantify frequency improvements to the primary body structure modes of matchboxing, bending, and torsion when using structural foam. Comprehensive hardware testing on the vehicle was also executed to validate the frequency improvements observed in the FEA results.
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