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Heat Release Pattern Diagnostics to Improve Diesel Low Temperature Combustion

机译:热释放图案诊断改善柴油低温燃烧

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Empirical results indicated that the engine emission and fuel efficiency of low-temperature combustion (LTC) cycles can be optimized by adjusting the fuel-injection scheduling in order to obtain appropriate combustion energy release or heat-release rate patterns. Based on these empirical results, the heat-release characteristics were correlated with the regulated emissions such as soot, hydrocarbon and oxides of nitrogen. The transition from conventional combustion to LTC with the desired set of heat-release rate has been implemented. This transition was facilitated with the simplified heat-release characterization wherein each of the consecutive engine cycles was analyzed with a real-time controller embedded with an FPGA (field programmable gate array) device. The analyzed results served as the primary feedback control signals to adjust fuel injection scheduling. The experimental efforts included the boost/backpressure, exhaust gas recirculation, and load transients in the LTC region. The impact of heat-release phasing, duration, splitting, and shaping on the combustion-efficiency and cylinder pressure-rise rate was also analyzed with an engine cycle simulation to facilitate the model-based control.
机译:经验结果表明,通过调节燃料喷射调度,可以通过调节燃料喷射调度来优化低温燃烧(LTC)循环的发动机排放和燃料效率,以获得适当的燃烧能量释放或热释放率图案。基于这些经验结果,散热特性与诸如烟灰,烃和氧化物的诸如烟灰的调节排放相关。已经实施了从常规燃烧到LTC的常规燃烧的转变已经实施。利用简化的释放表征促进了这种转变,其中通过嵌入FPGA(现场可编程门阵列)设备的实时控制器分析每个连续发动机循环。分析结果用作调节燃料喷射调度的主要反馈控制信号。实验努力包括LTC区域中的升压/背压,废气再循环和负载瞬变。还通过发动机循环模拟分析了热释放阶段,持续时间,分裂和成型对燃烧 - 效率和汽缸压力上升速率的影响,以便于基于模型的控制。

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