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Technical Paper

Engine Braking: A Perspective in Terms of Brake Power

2019-01-09
2019-26-0288
Engine braking is a supplemental retarding technology in addition to foundational friction brakes in commercial vehicles. This technology is in use in Europe & Americas for several decades now. In engine braking, the engine acts as a compressor, thus producing the required braking power. The braking power is generated by either reducing the volumetric efficiency or increasing the pressure difference across the cylinder. This is usually achieved by means of exhaust valve lift modulation. There are dominantly two types of engine brakes viz. bleeder brake and compression release brake. The present work uses GT-Power® model to study the braking performance of a 4-cylinder, medium duty diesel engine at different engine RPMs and valve lifts. The work brings out a comprehensive understanding of different lift events and their effects on braking performance.
Technical Paper

Global Cooperation and Innovation: a case study about the development of the world's first application of an electronic locker differential integrated to a front transversal transmission

2008-10-07
2008-36-0195
This article aims to show how the development of innovative products within the automotive industry in Brazil has been oriented, linking technological competences construction in local poles with suppliers and headquarters cooperation. The discussion in this article is illustrated by the development and application analysis of an electronic locker differential integrated to a front transversal transmission, which is the world's first commercial application. It proposes, through a case study, a relationship between the subjects discussed in here and the new tendencies for product development within the automotive industry and also for the world's R&D flow.
Technical Paper

PIV Measurements of In-Cylinder Flow in a Four-Stroke Utility Engine and Correlation with Steady Flow Results

2004-09-27
2004-32-0005
Large-scale flows in internal combustion engines directly affect combustion duration and emissions production. These benefits are significant given increasingly stringent emissions and fuel economy requirements. Recent efforts by engine manufacturers to improve in-cylinder flows have focused on the design of specially shaped intake ports. Utility engine manufacturers are limited to simple intake port geometries to reduce the complexity of casting and cost of manufacturing. These constraints create unique flow physics in the engine cylinder in comparison to automotive engines. An experimental study of intake-generated flows was conducted in a four-stroke spark-ignition utility engine. Steady flow and in-cylinder flow measurements were made using three simple intake port geometries at three port orientations. Steady flow measurements were performed to characterize the swirl and tumble-generating capability of the intake ports.
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