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Modeling and Analysis of a Turbocharged Diesel Engine with Variable Geometry Compressor System

机译:可变几何压缩机系统的涡轮增压柴油机建模与分析

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In order to increase the efficiency of automotive turbochargers at low speed without compromising the performance at maximum boost conditions, variable geometry compressor (VGC) systems, based on either variable inlet guide vanes or variable geometry diffusers, have been recently considered as a future design option for automotive turbochargers. This work presents a modeling, analysis and optimization study for a Diesel engine equipped with a variable geometry compressor that help understand the potentials of such technology and develop control algorithms for the VGC systems. A cycle-averaged engine system model, validated on experimental data, is used to predict the most important variables characterizing the intake and exhaust systems (i.e., mass flow rates, pressures, temperatures) and engine performance (i.e., torque, BMEP, volumetric efficiency), in steady-state and transient conditions. The model is used to explore the engine system sensitivity to the VGC control input; in particular, its effect on the engine performance and compressor stability is evaluated. A preliminary optimization for steady-state (open-loop) control of the VGC system is then proposed.
机译:为了提高低速下汽车涡轮增压器的效率而又不损害最大增压条件下的性能,基于可变进气口导叶或可变几何扩散器的可变几何压缩机(VGC)系统最近已被视为未来的设计选择用于汽车涡轮增压器。这项工作为配备可变几何压缩机的柴油机提供了建模,分析和优化研究,有助于了解这种技术的潜力并开发用于VGC系统的控制算法。根据实验数据验证的平均发动机系统周期模型可用于预测表征进气和排气系统(即质量流量,压力,温度)和发动机性能(即扭矩,BMEP,容积效率)的最重要变量。 ),稳态和瞬态条件。该模型用于探索发动机系统对VGC控制输入的敏感性。特别是评估了其对发动机性能和压缩机稳定性的影响。然后提出了对VGC系统的稳态(开环)控制的初步优化。

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