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Technical Paper

Electronic Throttle Control With Contactless Position Sensor And Smart Power Full-Bridge

2001-03-05
2001-01-0984
Electronic throttle systems are becoming more and more important in today's motor vehicles. These systems consist of: a throttle valve with an electrical actuator and a transmission a position feedback an electronic acceleration pedal an electronic control unit (ECU) a semiconductor h-bridge for driving the motor. The electronic acceleration pedal gives a set point to the ECU. A control signal is generated and moves the motor of the throttle valve with a semiconductor h-bridge to the requested position. The voltage drop of a potentiometer is used here as control feedback signal. The potentiometer in the throttle valve is moved very often and has a rough environment like high temperature and vibrations. Therefore this system has a lot of problems with mechanical attrition and reliability during the whole system lifetime. The accuracy of the position control decreases over time.
Technical Paper

Power Stage Partitioning for E-VALVE Applications

2001-03-05
2001-01-0239
The objective of this SAE paper is to discuss a power stage partitioning which will provide a cost effective and flexible Infineon Technologies solution to control future E-Valve applications. To fulfil environmental demands, E-Valve applications will enable car manufacturers to: Dynamically reduce the number of working cylinders according to the drivers' torque requirements Have an efficient and variable control over the engine load in various conditions Dispense with throttles and exhaust recirculation valves The paper will describe: 1 The integration of the 4 MosFET and the future technology development required for the next system optimization. 2 Gate driver integration (3 different scenarios): Analog Interfacing between the μcontroller and the MosFETs with an integrated protection functionality (Scenario A).
Technical Paper

Hybrid Powertrain Technology Assessment through an Integrated Simulation Approach

2019-09-09
2019-24-0198
Global automotive fuel economy and emissions pressures mean that 48 V hybridisation will become a significant presence in the passenger car market. The complexity of powertrain solutions is increasing in order to further improve fuel economy for hybrid vehicles and maintain robust emissions performance. However, this results in complex interactions between technologies which are difficult to identify through traditional development approaches, resulting in sub-optimal solutions for either vehicle attributes or cost. The results presented in this paper are from a simulation programme focussed on the optimisation of various advanced powertrain technologies on 48 V hybrid vehicle platforms. The technologies assessed include an electrically heated catalyst, an insulated turbocharger, an electric water pump and a thermal management module.
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