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Combustion System Development of a High Performance and Fuel Efficient TGDI Engine Guided by CFD Simulation and Test

机译:CFD仿真和试验引导高性能和省油高效发动机的燃烧系统开发

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A TGDI (turbocharged gasoline direct injection) engine is developed to realize both excellent fuel economy and high dynamic performance to guarantee fun-to-drive. In order to achieve this target, it is of great importance to develop a superior combustion system for the target engine. In this study, CFD simulation analysis, steady flow test and transparent engine test investigation are extensively conducted to ensure efficient and effective design. One dimensional thermodynamic simulation is firstly conducted to optimize controlling parameters for each representative engine operating condition, and the results serve as the input and boundary condition for the subsequent Three-dimensional CFD simulation. 3D CFD simulation is carried out to guide intake port design, which is then measured and verified on steady flow test bench. CFD simulation is also conducted to gain insight into in-cylinder flow, fuel-air mixture formation and combustion, and therefore, support the design of intake port, combustion chamber and piston crown. Transparent engine study is carried out under catalyst heating, part load, and full load conditions with several injector variants. Measurement data is analyzed in terms of combustion stability, combustion phasing, combustion duration, mixture formation and emission (HC/NO_x/soot), and the best injector variant is selected based on this analysis. With the support from CFD simulation and experimental investigation, an optimized combustion system is efficiently developed and released for subsequent P&E (performance and emission) development.
机译:开发了TGDI(涡轮增压汽油直喷)发动机,以实现优异的燃油经济性和高动态性能,以保证有趣的驱动。为了实现这一目标,为目标发动机开发出优异的燃烧系统非常重要。在本研究中,广泛进行CFD仿真分析,稳定的流量试验和透明发动机测试调查,以确保有效且有效的设计。首先进行一维热力学模拟以优化每个代表发动机操作条件的控制参数,并且结果用作随后的三维CFD仿真的输入和边界条件。 3D CFD仿真进行引导进气口设计,然后在稳态流动测试台上测量和验证。 CFD仿真还进行了进入缸内流动,燃料 - 空气混合物形成和燃烧,因此支持进气口,燃烧室和活塞冠的设计。透明发动机研究是在催化剂加热,部件载荷和具有几种注射器变体的满载条件下进行的。在燃烧稳定性,燃烧相位,燃烧持续时间,混合物形成和发射(HC / NO_X /烟灰)方面进行测量数据,并且基于该分析选择最佳的喷射器变体。通过CFD仿真和实验研究的支持,可以有效地开发并释放优化的燃烧系统,以便进行后续的P&E(性能和发射)开发。

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