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DUAL-STAGE TURBOCHARGER MATCHING AND BOOST CONTROL OPTIONS

机译:双级涡轮增压器匹配和升压控制选项

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Diesel engines are gaining in popularity, penetrating even the luxury and sports vehicle segments that have traditionally been strongly favored gasoline engines as the performance and refinement of diesel engines have improved significantly in recent years. The introduction of sophisticated technologies such as common rail injection (CRI), advanced boosting systems such as variable geometry and multi-stage turbocharging, and exhaust gas after-treatment systems have renewed the interest in Diesel engines. Among the technical advancements of diesel engines, the multi-stage turbocharging is the key to achieve such high power density that is suitable for the luxury and sports vehicle applications. Single-stage turbocharging is limited to roughly 2.5 bar of boost pressure. In order to raise the boost pressure up to levels of 4 bar or so, another turbocharger must be connected in series further multiplying the pressure ratio. The dual-stage turbocharging, however, adds system complexity, and the matching of two turbochargers becomes very costly if it is to be done experimentally. This study presents a simulation-based methodology for dual-stage turbocharger matching through an iterative procedure predicting optimal configurations of compressors and turbines. A physics-based zero-dimensional Diesel engine system simulation with a dual-stage turbocharger is implemented in SIMULINK environment, allowing easy evaluation of different configurations and subsequent analysis of engine system performance. The simulation program is augmented with a turbocharger matching program and a turbomachinery scaling routine. The configurations considered in the study include a dual-stage turbocharging system with a bypass valve added to the high pressure turbine, and a system with a wastegate valve added to a low-pressure turbine. The systematic simulation study allows detailed analysis of the impact of each of the configurations on matching, boost characteristics and transient response. The configuration with the bypass valve across high pressure turbine showed better results in terms of both steady state engine torque and transient behavior.
机译:柴油发动机越来越受欢迎,即使是传统上强烈的汽油发动机的奢侈品和跑车段也普及,因为近年来柴油发动机的性能和改进有所改善。诸如共同轨道注射(CRI),高级升压系统等复杂技术的引入,如可变几何和多级涡轮增压,以及废气后处理系统已经更新了对柴油发动机的兴趣。在柴油发动机的技术进步中,多级涡轮增压是实现适合奢侈品和运动车辆应用的这种高功率密度的关键。单级涡轮增压限制为大约2.5巴的增压压力。为了将增压压力提高到4巴的​​水平,另一个涡轮增压器必须串联连接,进一步乘以压力比。然而,双级涡轮增压增加了系统复杂性,并且如果要通过实验完成,两个涡轮增压器的匹配变得非常昂贵。本研究提出了一种基于模拟的双级涡轮增压器通过迭代过程,预测压缩机和涡轮机的最佳配置。使用双级涡轮增压器的基于物理的零维柴油发动机系统仿真在Simulink环境中实现,允许轻松评估不同的配置和发动机系统性能的随后分析。模拟程序使用涡轮增压器匹配程序和涡轮机械缩放程序进行了增强。该研究中考虑的配置包括双级涡轮增压系统,该系统具有添加到高压涡轮机的旁通阀,以及具有加入低压涡轮机的废气门阀的系统。系统仿真研究允许详细分析每个配置对匹配,提升特性和瞬态响应的影响。具有高压涡轮机的旁通阀的配置在稳态发动机扭矩和瞬态行为方面显示出更好的结果。

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