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The Virtual Engine Development for Enhancing the Compression Ratio of DISI-Engines Combining Water Injection, Turbulence Increase and Miller Strategy

机译:虚拟引擎开发,用于增强结合水注入,湍流增加和米勒战略的疾病引擎的压缩比

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The increase in efficiency is the focus of current engine development by adopting different technologies. One limiting factor for the rise of SI-engine efficiency is the onset of knock, which can be mitigated by improving the combustion process. HCCI/SACI represent sophisticated combustion techniques that investigate the employment of pre-chamber with lean combustion, but the effective use of them in a wide range of the engine map, by fulfilling at the same time the need of fast load control are still limiting their adoption for series engine. For these reasons, the technologies for improving the characteristics of a standard combustion process are still largely investigated. Among these, water injection, in combination with the Miller cycle, offers the possibility to increase the knock resistance, which in turn enables the rise of the engine geometric compression ratio. The need for reducing measurements and executing specific tests are mandatory to make still the IC-Engines competitive to other powertrain solutions. The implementation of water injection can be realized through different engine layouts and injection strategies. Besides, the results of injecting water are strictly dependent on the base engine features and load point. Therefore, virtual development becomes essential to study many engine configurations. In this work, indirect and direct water injection strategies are considered to increase the engine knock limit. The investigation is conducted with the 3D-CFD-Tool QuickSim, which was developed at IVK/FKFS Stuttgart. The implementation of water physics, the extension of simulation domain up to full engine (including intake and exhaust system), and the possibility to analyze multiple cycles allow understanding the effects of water and valve timing on engine behavior. The simulation validation was accomplished through the experiments carried out on a single-cylinder engine, equipped with indirect and direct water injections. The set-up of a virtual test bench is exploited to increase the engine geometric compression ratio, by combining Miller valve timing strategies with water injection. Particularly the investigation of a water-optimized injector targeting and position for the direct water injector enables increasing the turbulence within the cylinder and compensating for the effect of early intake valve closure. With the support of a newly developed knock model, the effect of water and the modified valve overlap on the combustion process is analyzed, to increase engine efficiency and propose a new approach for future powertrain engine development process.
机译:效率的提高是通过采用不同技术的当前发动机开发的重点。 Si引擎效率提高的一个限制因素是敲击的开始,可以通过改善燃烧过程来减轻这种爆炸。 HCCI/SACI代表了复杂的燃烧技术,这些技术调查了使用精益燃烧的培训前的使用,但是通过同时满足快速载荷控制的需要,在广泛的发动机图中有效使用它们仍在限制他们的限制系列引擎的收养。由于这些原因,仍然在很大程度上研究了改善标准燃烧过程特征的技术。其中,水注射与米勒周期结合使用,提供了增加敲击性的可能性,进而使发动机几何压缩比的上升。必须减少测量和执行特定测试的需求使其仍然使IC引擎与其他动力总成解决方案有竞争力。可以通过不同的发动机布局和注入策略来实现注水的实施。此外,注入水的结果严格取决于基本发动机的特征和负载点。因此,虚拟开发对于研究许多发动机配置至关重要。在这项工作中,间接和直接的水分喷射策略被认为是增加发动机爆震极限。该调查是使用IVK/FKFS Stuttgart开发的3D-CFD-Tool Quicksim进行的。水物理学的实施,模拟域的扩展到完整的发动机(包括摄入量和排气系统),以及分析多个周期的可能性,可以理解水和气门正时对发动机行为的影响。模拟验证是通过在单缸发动机上进行的,配备间接水和直接水注射的实验。利用虚拟测试台的设置来利用通过将米勒阀正时策略与水分注入相结合,以增加发动机几何压缩比。特别是对直接喷射器的水优化喷油器的靶向和位置的研究,可以增加圆柱体内的湍流并补偿早期进气门闭合的影响。在新开发的敲门模型的支持下,分析了水和修饰阀重叠对燃烧过程的影响,以提高发动机效率,并为未来的动力总成发动机开发过程提出了一种新的方法。

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