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Technical Paper

Reduction of Wall Thickness of Ceramic Substrates for Automotive Catalysts

1990-02-01
900614
Ceramic honeycombs have been used as automotive catalyst supports in US, Japan, Europe and other highly urbanized countries. Now, engine output is a great concern for automanufacturers, and reduction of the wall thickness of honeycomb substrates became indespensable for maintenance of gas flow restriction to a certain low level. To reduce wall thickness, material should be strong to maintain canning strength of substrates. Mechanical strength was improved with high density cordierite. However, isostatic strength of whole substrates was still insufficient with reduced thin walls for canning in spite of the material's high mecanical strength. Discussion is carried out on further possibility of improving canning performance of thin wall substrates as well as flow restriction, and warm up characteristics.
Technical Paper

Development of Thinnest Wall Catalyst Substrate

2002-03-04
2002-01-0358
The thinnest wall thickness of automotive catalyst substrates has previously been 30 μm for metal substrates and 50 μm for ceramic substrates. This paper describes a newly developed catalyst substrate that is the world's first to achieve 20-μm-thick cell walls. This catalyst substrate features low thermal capacity and low pressure loss. Generally, a thinner cell wall decreases substrate strength and heat shock resistance. However, the development of a “diffused junction method”, replacing the previous “wax bonding method”, and a small waved foil has overcome these problems. This diffused junction method made it possible to strengthen the contact points between the inner waved foil and the rolled foil compared with previous substrates. It was also found that heat shock resistance at high temperature can be much improved by applying a slight wave to the foil instead of using a plane foil.
Technical Paper

Development of a Ball Bearing Turbocharger

1990-02-01
900125
Nissan has added ball bearings to its “High-flow Ceramic Turbocharger”(1) (introduced in 1987) to improve acceleration response by reducing friction loss. The following programs were carried out in applying ball bearings to the turbocharger: Optimum bearing size and material were selected to assure long life; lubrication techniques were employed to achieve compatibility between acceleration response and durability; a thrust support system was designed to assure that the ball bearings endure thrust load which varies in direction and magnitude during engine operation; and the squeeze film damper was optimized to keep the turbocharger silent. These innovations have resulted in a practical ball-bearing turbocharger, which has been installed in Nissan's most recent Skyline model(released in May 1989). This is the first time a ball-bearing turbocharger has been applied to a passenger car.
Technical Paper

The Development of Second Generation Ceramic Turbocharger Rotor - Further Improvements in Reliability

1988-02-01
880702
Nissan has developed a second generation ceramic turbocharger rotor which provides greater reliability and higher performance than a conventional ceramic rotor. The new rotor is made of silicon nitride, which has demonstrated sufficient strength in vehicle applications. The bonding technique for joining the ceramic rotor to the metal shaft has been confirmed through experimentation to have sufficient reliability. The second generation rotor is featured by the low stress design and higher dynamic strength, and two factors contribute to its higher reliability. The rotor shape was optimized on the basis of results obtained in two analyses of particle impact resistance and applied combined stress. Test results show that the reliability of the second generation rotor have been substantially improved over those of the conventional rotor now being used on production vehicles.
Technical Paper

Development of Nissan High Response Ceramic Turbocharger Rotor

1986-08-01
861128
Nissan utilizes ceramics in the turbine rotor of turbochargers to improve acceleration response by reducing the inertia weight of the turbine rotor. Since ceramic material does not yield, a high degree of localized stress will cause it to fail. Therefore, in order to be able to apply this brittle material to a high-speed rotor under high-stress conditions, silicon nitride material has been improved, and a low-stress shape employing the three-dimensional finite element method developed. Furthermore, a new technique for bonding the ceramic rotor to a metal shaft is employed in order to reduce residual stress caused by the difference in thermal expansion coefficients between the ceramic and metal materials. Since the strength of ceramics varies widely, it was necessary to confirm the reliability of the ceramic rotor and evaluate its life of fatigue. This paper, then, describes the design philosophy, bonding method, reliability and durability of the ceramic rotor.
Technical Paper

Study on Miniaturization of an Air-Cooled Inverter Integrated with Motor

2014-04-01
2014-01-1872
This paper reports about a trial for miniaturization of an air-cooled inverter integrated with motor, which is realized by reduction of the total volume of smoothing capacitor. An integrated system prototype was constructed with a disk-shaped inverter positioned at the rear end of the motor. We examined the possibility of using a ceramic capacitor, which features a higher heat-resistance temperature, lower internal resistance and higher capacity density than a film capacitor. At the same level of capacitance, the volume of a ceramic capacitor is less than one-half that of a film capacitor, enabling the size of the smoothing capacitor to be reduced to approximately one-fifth that of the currently used device. A suitable circuit configuration and physical layout of distributed smoothing capacitors and corresponding power device modules are proposed and demonstrated.
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