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Technical Paper

The New High-Performance V6 Gasoline Turbocharged Engine from NISSAN

2009-04-20
2009-01-1067
It can be said that super sports car has a mission to drive the evolution of cars with optimizing the balance between power and environmental performances and pursuing the ultimate driving performance. Nissan has therefore developed the brand new V6 gasoline twin-turbocharged engine for a new generation of super sports cars. To achieve high environmental as well as high dynamic performance, the V6-cylinder layout was selected for its compact size and lightweight while the twin-turbocharged design was aiming for downsizing. All engine parts were designed to achieve high efficiency, as for example, the plasma-sprayed coating of the bore which improves greatly the cooling performance, or the super-heat resistant steel used for the turbocharger, which improves combustion efficiency. Thanks to this technological advance, top-level properties could be attained for sports cars in terms of fuel economy and emissions.
Technical Paper

Numerical Simulation of Pedestrian Head Impact on Vehicle Front Structure

2003-10-27
2003-01-2834
This paper presents the numerical simulations of a headform impact on hoods and front-end structures. Finite Element (FE) modelling of the headform impactor and the engine compartment are described. An explicit FE code PAM CRASH™ is used to predict the time history of the acceleration of the headform. Several numerical examples are presented to demonstrate the effectiveness of this simulation. Additionally, parameter studies are conducted to evaluate the accuracy of the test results and evaluate the design parameters. Although additional study is needed, good correlation at the majority of the evaluating points was achieved.
Technical Paper

Development of Breath-Alcohol-Detection System

2016-04-05
2016-01-1498
The problem of high fatal accident rates due to drunk driving persists, and must be reduced. This paper reports on a prototype system mounted on a car mock-up and a prototype portable system that enables the checking of the drivers’ sobriety using a breath-alcohol sensor. The sensor unit consists of a water-vapor-sensor and three semiconductor gas sensors for ethanol, acetaldehyde, and hydrogen. One of the systems’ features is that they can detect water vapor from human-exhaled breath to prevent false detection with fake gases. Each gas concentration was calculated by applying an algorithm based on a differential evolution method. To quickly detect the water vapor in exhaled breath, we applied an AC voltage between the two electrodes of the breath-water-vapor sensor and used our alcohol-detection algorithm. The ethanol level was automatically calculated from the three gas sensors as soon as the water vapor was detected.
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