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Model-Based Analysis and Optimization of Turbocharged Diesel Engines with a Variable Geometry Compressor and Turbine System

机译:具有可变几何压缩机和汽轮机系统涡轮增压柴油发动机的模型分析与优化

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In the last few years, the application of downsizing and turbocharging to internal combustion engines has considerably increased due to the proven potential of this technology to increase engine efficiency. Variable geometry turbines have been largely adopted to optimize the exhaust energy recovery over a large operating range. Two-stage turbocharger systems have also been studied as a solution to improve engine low-end torque and efficiency, with the first units currently available on the market. However, the compressor technology is today still based on fixed geometry machines, which are sized to efficiently operate at the maximum air flow and therefore lead to poor efficiency values at low air flow conditions. Furthermore, the surge limits prevents the full capabilities of VGT systems to increase the boosting at low engine speed. In order to increase the compressor efficiency at low engine speed without compromising the operation at medium-high engine speed, variable geometry compressor (VGC) systems have been recently considered as a future design option for automotive turbochargers, considering either a variable inlet guide vanes device or with a variable geometry diffuser. In order to effectively understand the potentials of such technology, this paper presents analysis, optimization and control results for an automotive Diesel engine equipped with variable geometry compressor and turbine. Starting from a validated model of the engine air path dynamics, a detailed design optimization study was conducted, showing how the VGC can be used to increase the stability range of the compressor by means of significantly shifting the surge limit of the machine while retaining potentials for improving the engine performance. Based on the outcome of the above study, a model-based control strategy for the VGC actuation was formalized. The developed control algorithms were tested in simulation, showing how this actuator can be used to optimize boost pressure and air mass flow rate of the engine while preventing the compressor surge.
机译:在过去几年中,由于该技术的经过验证的潜力来提高发动机效率,将缩小化和涡轮增压到内燃机的应用相当大。可变几何涡轮机主要采用以优化大型工作范围内的排气能量回收。还研究了两阶段涡轮增压器系统作为一种改善发动机低端扭矩和效率的解决方案,目前在市场上提供的第一部件。然而,当今压缩机技术仍然基于固定的几何机器,其尺寸适于在最大空气流下有效地操作,因此在低空气流动条件下导致效率差。此外,浪涌限制可以防止VGT系统的全部能力以低发动机速度增加升压。为了在低发动机速度下提高压缩机效率而不损害中高发动机速度的操作,可变几何压缩机(VGC)系统已被认为是汽车涡轮增压器的未来设计选择,考虑到可变入口导向叶片装置或使用可变几何漫射器。为了有效了解这种技术的潜力,本文为配备有变几何压缩机和涡轮机的汽车柴油发动机提供了分析,优化和控制结果。从发动机空气路径动态的验证模型开始,进行了详细的设计优化研究,示出了VGC如何用于通过显着地移位机器的浪涌限制,以增加压缩机的稳定范围,同时保持电位提高发动机性能。基于上述研究的结果,正式化了VGC致动的基于模型的控制策略。在仿真中测试了开发的控制算法,示出了如何使用该执行器如何优化发动机的增压压力和空气质量流量,同时防止压缩机涌动。

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