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Combustion Noise Reduction with High Thermal Efficiency by the Control of Multiple Fuel Injections in Premixed Diesel Engines

机译:通过预混柴油发动机中的多种燃料喷射控制具有高热效率的燃烧降噪

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Premixed diesel combustion is effective for high thermal efficiency and reductions of NO_x and PM emissions, but a reduction of combustion noise is necessary for medium-high load engine operation. The control of the fuel injection has become more accurate because of the technical progress of the common rail fuel injection system, and the target heat release shape, calculated by computation, can be achieved by control of EGR, boosting, fuel injection timing, and injection quantity of multiple fuel injections. In this paper, the reduction of premixed diesel combustion noise maintaining high thermal efficiency has been investigated by the control of injection timings and heating values of multiple fuel injections. There are two aspects of the combustion noise reduction by multiple fuel injections. One is the reduction of the maximum rate of pressure rise in each combustion cycle, and the other is noise reduction effects by the noise cancelling spike (NCS) combustion. The research was conducted with both engine simulations and experiments. In combustion noise simulations, the heat release history of multiple injections was approximated by Wiebe functions and the simulated combustion noise was calculated from the fitted curve of the heat release and the coherence transfer function. The structural attenuation (SA) of the test engine was calculated from the power spectrum of the FFT analysis of the in-cylinder pressure wave data and the cross power spectrum of the sound pressure of the engine noise by the coherence method, then the combustion noise (CNL) can be calculated from the structural attenuation and cylinder pressure level (CPL) in the simulation, as shown in equation 4. The simulation results were confirmed by the engine tests. First, the combustion noise reduction by two stage fuel injection was investigated. The maximum rate of pressure rise changes depending on the combustion occurring separately in the compression and expansion strokes. One heat release was set at TDC and the second before or after the TDC. In the late two stage combustion as shown in Figure 12 (b), the combustion noise reduction was most effectively achieved when the heating value of Q2nd is higher than that of Q1st, however in the early two stage combustion in Figure 12 (a), the Q1st heat release occurs during the compression stroke and the combustion noise reduction by the early two stage NCS combustion is more effective than the combustion noise reduction by the late two stage NCS combustion. Three stage combustion simulations were also investigated at 0.6MPa IMEP and 2000 rpm. The optimum heat release shape for low combustion noise and high indicated thermal efficiency was calculated and the role of each part of the heat release in the three stage combustion is discussed. The simulation predicted 87.1 dBA of combustion noise and 50.3% of indicated thermal efficiency. Finally, the effects of multiple fuel injections on the degree of constant volume and combustion noise are analyzed and discussed.
机译:预混合的柴油燃烧对于高热效率和NO_X和PM排放的降低是有效的,但是中高负荷发动机操作需要降低燃烧噪声。由于公共轨道燃料喷射系统的技术进步,燃料喷射的控制变得更加准确,并且通过计算计算的目标散热形状可以通过控制EGR,提升,燃料喷射正时和注射来实现多种燃料喷射的数量。在本文中,通过控制注射定时和多种燃料喷射的加热值来研究预混合的柴油燃烧噪声保持高热效率的降低。通过多种燃料喷射有燃烧噪声减少了两个方面。一个是每个燃烧循环中的最大压力升高速率的降低,另一个是噪声消除尖峰(NCS)燃烧的降噪效应。该研究是用发动机模拟和实验进行的。在燃烧噪声模拟中,多次喷射的热释放历史通过Wiebe功能近似,并且从热释放的拟合曲线和相干传递函数计算模拟燃烧噪声。测试发动机的结构衰减(SA)由缸内压力波数据的FFT分析的功率谱和通过相干方法的发动机噪声声压的横频谱来计算,然后燃烧噪声(CNL)可以根据模拟中的结构衰减和气缸压力水平(CPL)计算,如公式4所示。通过发动机测试确认了模拟结果。首先,研究了通过两个阶段燃料喷射的燃烧噪声降低。根据压缩和膨胀冲程分别发生的燃烧,压力上升的最大速率变化。一个热释放在TDC和TDC之前或之后设定。在如图12(b)所示的后两级燃烧中,当Q2ND的加热值高于第一季度的加热值高于图12(a)中的早期两个阶段燃烧时,最有效地实现了燃烧噪声降低。在压缩行程期间发生Q1ST热释放,并且通过早期的两个阶段NCS燃烧的燃烧噪声减少比两级NCS燃烧晚期的燃烧噪声减少更有效。还在0.6MPa IMEP和2000rpm下进行了三个阶段燃烧模拟。计算出低燃烧噪声和高指示热效率的最佳热释放形状,并讨论了三级燃烧中的热释放的每个部分的作用。模拟预测了87.1dBA的燃烧噪声和50.3%的指示热效率。最后,分析并讨论了多种燃料喷射对恒定体积和燃烧噪声程度的影响。

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