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Technical Paper

A Novel Dissipative Acoustic Material

2021-08-31
2021-01-1128
Due to modern trends in the automotive industry, such as vehicle electrification, light-weighting, reduced NVH (Noise, Vibration and Harshness) packaging space, etc., it is desirable to have a low profile and light-weight acoustic material with multi-functionality. If one single layer of a thin acoustic material can provide comparable absorption and transmission loss to a multilayer treatment, it will benefit the industry by saving weight, packaging space and system cost. Acoustic absorption and sound transmission loss performance of a new dissipative material at reduced weight and thickness is introduced in this paper. The acoustic performance of the material was evaluated by using random incidence absorption and transmission loss as well as in-vehicle experiment. Further potential applications for this material have been identified using the Statistical Energy Analysis (SEA) method with panel leakage considered.
Journal Article

The Deleterious Effects of Organic Binder on Intumescent Mat Mount Material

2008-04-14
2008-01-0452
For decades, ceramic fiber mats have been used to mechanically support substrates in catalytic converters. Intumescent mats, those that expand with heat, are composed primarily of ceramic fibers, vermiculite, and organic binder. The binder is required for manufacturing, handling, and installation. Unfortunately, under cool operating conditions, its effects on mat performance are often negative. While residual binder is not an automatic precursor to premature failure, it can amplify the effects of other factors such as gap control and vibration. As the mat mount material is heated, sections can become soft and pliable. In the absence of sufficient heat for complete binder removal, regions of the mat may become rigid during the cooling cycle. This results in a decrease in mat resiliency. Several tests can be used to show the relationship between binder level and material performance. These tests typically characterize expansion properties and pressure performance.
Technical Paper

New Mounting Materials For Catalytic Converters to Meet Stricter Emission Requirements

2003-11-18
2003-01-3554
This paper discusses trends in environmental regulations to achieve tighter emission standards for vehicles, which is reflected in the design and components of catalytic converters. Catalytic converters are being located closer to the engine to achieve faster catalyst activity and quicker emission reduction. The ceramic monoliths are also changing to provide a higher number of cells per area resulting in reduced mass, wall thickness and mechanical strength. These designs are demanding new mounting materials that can provide broader temperature capability, while maintaining the ability to hold the ceramic monolith inside the can without damage to the ceramic monolith. New reduced vermiculite intumescent materials, non-intumescent materials and combinations of intumescent and non-intumescent materials are discussed to address the compatibility with the new monoliths and broader operating temperatures.
Technical Paper

Wafer Applied Underfill – Delivering Flip Chip to the Mainstream

2002-03-04
2002-01-1050
Flip Chip packaging has found limited use for a technology that was introduced decades ago. Its application widened with the use of underfill, a necessary constituent to minimizing CTE mismatch between the component and substrate. Its reliability has been established on laminate substrates for automotive applications, an important development in light of the continuous increase in vehicle electronic content and function. Unfortunately, the assembly process incorporating underfill is cumbersome and batch-like. Also, the adhesive strength of the underfill depends critically on the cleanliness of the die after reflow, necessitating costly cleaning equipment and complex process monitoring protocols. Hence, the process of manufacturing is not SMT-friendly. A new technology, Wafer Applied Underfill (WAU), addresses the shortcomings of the traditional underfill process.
Technical Paper

Container Deformation Procedure for Ceramic Monolith Catalytic Converters

2000-03-06
2000-01-0217
A typical automotive catalytic converter is constructed with a ceramic substrate and a steel shell. Due to a mismatch in coefficients of thermal expansion, the steel shell will expand away from the ceramic substrate at high temperatures. The gap between the substrate and shell is usually filled with a fiber composite material referred to as “mat.” Mat materials are compressed during assembly and must maintain an adequate pressure around the substrate under extreme temperature conditions. The container deformation measurement procedure is used to determine catalytic converter shell expansion during and after a period of hot catalytic converter operation. This procedure is useful in determining the potential physical durability of a catalytic converter system, and involves measuring converter shell expansion as a function of inlet temperature. A post-test dimensional measurement is used to determine permanent container deformation.
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