首页> 外文会议>ASME Internal Combustion Engine Division technical conference >IMPACT OF INTAKE INDUCED SWIRL ON COMBUSTION AND EMISSIONS ON A SINGLE CYLINDER DIESEL ENGINE
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IMPACT OF INTAKE INDUCED SWIRL ON COMBUSTION AND EMISSIONS ON A SINGLE CYLINDER DIESEL ENGINE

机译:进气涡流对单缸柴油机燃烧和排放的影响

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摘要

Engine induced swirl improves mixing of fuel and air and at optimal values accelerates burn, improves the combustion stability and can decrease particulate matter (PM). However, swirl increases.convective heat loss and cylinder charge loss and could increase nitrogen oxides (NOx) emissions. High intensity of swirl could impede flame development and increases emissions of total hydrocarbons (THC) and carbon monoxide (CO). Therefore, careful and smart selection of optimal swirl values is paramount in order to obtain beneficial impact on combustion and emissions performance. This study is conducted on a 0.5L single cylinder research engine with common rail (CR) diesel injection system, with parameters corresponding to modern engines of passenger cars. The engine has three separate ports in the cylinder head. The change of swirl ratio is defined by closing appropriate ports. There are three levels of swirl ratio under study - 1.7, 2.9 and 4.5, corresponding to low, medium and high swirl levels respectively. This study highlights the influence of intake induced swirl on combustion parameters and emissions. Assessed combustion parameters are, among others, heat release rate, cylinder pressure rise and indicated mean effective pressure. Assessed emissions are standard gaseous emissions and smoke, with emphasis on PM emissions. An engine speed of 1500 rpm was selected, which well represents common driving conditions of this engine size. Various common rail pressures are used at ambient inlet manifold pressure (without boost pressure) and at 1 bar boosted pressure mode. It is found that when the swirl level is increased, the faster heat release during the premixed combustion and during early diffusion-controlled combustion causes a quick increase in both in-cylinder pressure and temperature, thus promoting the formation of NOx. However, since swirl enhances mixing and potentially produces a leaning effect, PM formation is reduced in general. However, maximum peak temperature is lower for high swirl ratio and boosted modes due to the increase of heat transfer into cylinder walls. Furthermore, it is necessary to find optimal values of common rail pressures and swirl ratio. Too much mixing allows increase on PM, THC and CO emissions without decrease on NOx emissions in general. Common rail injection system provides enough energy to achieve good mixing during all the injection time in the cases of supercharged modes and high common rail pressure modes. Positive influence of swirl ratio is found at lower boost pressures, lower revolution levels and at lower engine loads. The results obtained here help providing a better understanding on the swirl effects on diesel engine combustion and exhaust emissions over a range of engine operating conditions, with the ultimate goal of finding optimal values of swirl operation.
机译:发动机诱导的旋流改善了燃料和空气的混合,并且在最佳值时加速燃烧,提高燃烧稳定性,可以减少颗粒物质(PM)。然而,旋流增加。连接热损失和汽缸电荷损失,可以增加氮氧化物(NOx)排放。高强度的漩涡可能会妨碍火焰显影并增加总碳氢化合物(THC)和一氧化碳(CO)的排放。因此,仔细和智能选择的最佳旋流值是至关重要的,以便对燃烧和排放性能产生有益的影响。本研究采用共同轨道(CR)柴油注射系统的0.5L单缸研究发动机,具有对应于乘用车现代发动机的参数。发动机在气缸盖中有三个单独的端口。旋流比的变化是通过关闭适当的端口来定义的。在研究中有三种水平的旋流比 - 1.7,2.9和4.5,分别对应于低,中和高涡流。本研究突出了摄入脉冲对燃烧参数和排放的影响。评估的燃烧参数在其他燃烧速率等之外,气缸压力升高,并表示平均有效压力。评估的排放是标准的气体排放和烟雾,重点是PM排放。选择了1500 rpm的发动机速度,该发动机速度良好地代表了该发动机尺寸的常见驾驶条件。各种常见的轨道压力用于环境入口歧管压力(无升压压力)和1巴升压压力模式。结果发现,当涡流水平增加时,预混燃烧期间和早期扩散控制燃烧期间的更快的热释放导致气缸压力和温度的快速增加,从而促进NOx的形成。然而,由于旋流增强混合并且可能产生倾斜效果,因此PM形成通常减少。然而,由于热转印到圆柱壁的热量增加,最大峰值温度较低,高涡流比和升压模式。此外,有必要找到共同导轨压力和旋流比的最佳值。太多的混合允许增加PM,THC和CO排放,而不会降低NOx排放。共轨注射系统提供足够的能量,以在增压模式和高普通轨道压力模式的情况下在所有喷射时间内实现良好的混合。旋流比的正态影响在较低的升压压力下,较低的旋转水平和较低发动机负荷下发现。这里获得的结果有助于提供对一系列发动机操作条件的柴油发动机燃烧和废气排放的旋流作用,具有找到旋流操作的最佳值的最终目标。

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