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Development of an Integrated Design Tool for Real-Time Analyses of Performance and Emissions in Engines Powered by Alternative Fuels

机译:开发综合设计工具,用于通过替代燃料供电的发动机的性能和排放的实时分析

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Development of computationally fast, numerically robust, and physically accurate models to compute engine-out emissions can play an important role in the design, development, and optimization of automotive engines powered by alternative fuels (such as natural gas and H_2) and fuel blends (such as ethanol-blended fuels and biodiesel-blended fuels). Detailed multidimensional models that couple fluid dynamics and chemical kinetics place stringent demands on the computational resources and time, precluding their use in design and parametric studies. This work describes the development of an integrated design tool that couples a fast, robust, physics-based, two-zone quasi-dimensional engine model with modified reaction-rate-controlled models to compute engine-out NO and CO for a wide variety of fuel-additive blends. This integrated tool was designed to evaluate engine performance and emissions on the order of a typical engine cycle (~25-50 milliseconds) to enable its use for real-time control and optimization. As an illustrative example, this tool was used to study the engine-out NO and CO in a natural gas engine. The engine-out CO and NO predicted by the model showed good agreement with experimental data. The performance and emission computations for a single engine cycle were completed in about 8 milliseconds.
机译:在计算快速,数值鲁棒和物理准确的模型中的制定来计算发动机排放可以在由替代燃料(如天然气和H_2)和燃料混合物(如天然气)和燃料混合(如天然气)和燃料混合物(如天然气)和燃料混合物提供的汽车发动机的设计如乙醇共混燃料和生物柴油混合燃料)。详细的多维模型,耦合流体动力学和化学动力学对计算资源和时间的严格需求,妨碍他们在设计和参数研究中使用。这项工作描述了一种综合设计工具的开发,耦合快速,坚固,物理的双域准尺寸发动机模型,具有改进的反应速率控制模型,以计算发动机输发No和CO的各种各样的CO燃料添加剂混合。该集成工具旨在评估典型发动机循环(约25-50毫秒)的发动机性能和排放,以实现其用于实时控制和优化。作为说明性示例,该工具用于研究自然燃气发动机中的发动机输出NO和CO。通过模型预测的发动机输出CO和NO预测与实验数据吻合良好。单个发动机循环的性能和发射计算在大约8毫秒内完成。

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