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Effects of swirl at intake manifold on engine performance using ethanol fuel blend

机译:使用乙醇混合燃料的进气歧管涡流对发动机性能的影响

摘要

Ethanol fuel is widely used as an alternative fuel for gasoline engines. The use of ethanol can reduce dependence on fuel from the fraction of hydrocarbons. The use of ethanol as fuel, however, causes increased fuel consumption. This increase is a result of the low calorific value and a shorter carbon chain. It also raises the value of Reid's vapor, making it difficult to mix with air. Adding swirl generators to the intake manifold aims to make the interior airflow more turbulent. The mixture of fuel with air will also improve. Given these drawbacks, the study analyses the effect of adding a swirl generator to the intake manifold on engine performance, fuel consumption, and emissions produced. The experimentis done on a port injection gasoline engine, four-stroke, SOHC four cylinder connected to the engine dynamometer, which is used to measure the power and emissions produced. To get a good form of swirl generator, experiments were performed using a flow bench. A method has also been developed simultaneously to quantify the swirl characteristics of a swirl generator under steady flow conditions in a flow laboratory using the cylinder head, intake manifold, and swirl generator from the engine experiments. A refined swirl meter is installed under the cylinder head to measure the compressive load of the swirl, allowing for the calculation of angular momentum of the incoming air at varying intake valve lifts, thus producing the swirl number. A correlation is then sought between the engine and flow experiments to help quantify the impact of swirl motion on combustion and cyclic variation. The airflow rate into the cylinder, discharge coefficient of the intake system, and flow loss coefficient across the blockage arealso analyzed for different levels of swirl motion. The validity of this method under steady flow condition is confirmed by comparison of the results with the engine experiments. An engine using ethanol blend fuel has higher fuel consumption, E10 fuel consumption average increase is 12%, and E20 fuel consumption increase is 14%. Increasing the ethanol content further in fuels however will reduce the emissions productions. Performance in relation to the torque, E10 in the case Half Open Throttle at 2000 rpm reduces the engine torque by 3.8 %, at 4000 rpm the engine torque is reduced by 1.6%. E10 in the case of Wide Open Throttle at 2000 rpm reduce the engine torque by 3.4%, and at 4000 rpm reduces the torque by 1.2%. In the case of E20 at Half Open Throttleand rpm 2000 the engine torque reduces by 5.8%, and at 4000 rpm increases by 2.7%. The addition of a swirl generator will increase the engine performance in the case of E20 at Half Open Throttle. The average engine torque increases from 10 until 13 %, in the case of Wide Open Throttle the engine torque increases by 9%. In the case of E10 with Half Open Throttle the engine torque increases by 9%, and with Wide Open Throttle increases by 8,5%. But the emissions generated will be higher in the case of HC at Wide Open Throttle, increasing by 50%.
机译:乙醇燃料被广泛用作汽油发动机的替代燃料。乙醇的使用可以减少碳氢化合物对燃料的依赖性。然而,使用乙醇作为燃料会导致燃料消耗增加。这种增加是低热值和较短碳链的结果。这也提高了里德蒸气的价值,使其难以与空气混合。在进气歧管上增加涡流发生器的目的是使内部气流更加湍流。燃料与空气的混合物也将得到改善。考虑到这些缺点,该研究分析了在进气歧管上增加涡流发生器对发动机性能,燃油消耗和产生的排放的影响。该实验是在与发动机测功机相连的进气口汽油四冲程SOHC四缸发动机上完成的,该功率计用于测量产生的功率和排放。为了获得良好形式的旋流发生器,使用流动工作台进行了实验。同时还开发了一种方法,用于在流量实验室中使用气缸盖,进气歧管和发动机实验产生的涡流发生器在稳定流动条件下对涡流发生器的涡流特性进行量化。精巧的涡流计安装在气缸盖下方,以测量涡旋的压缩负载,从而可以计算进气门升程变化时进气的角动量,从而产生涡旋数。然后在发动机和流量实验之间寻求相关性,以帮助量化旋流运动对燃烧和循环变化的影响。还针对不同水平的旋流运动,分析了进入气缸的气流速率,进气系统的排气系数以及整个阻塞处的流量损失系数。通过将结果与发动机实验进行比较,证实了该方法在稳定流动条件下的有效性。使用乙醇混合燃料的发动机的燃油消耗更高,E10燃油消耗平均增加12%,E20燃油消耗增加14%。然而,进一步增加燃料中乙醇的含量将减少排放量。与扭矩相关的性能,在2000 rpm半开油门的情况下,E10降低了3.8%的发动机扭矩,在4000 rpm时,发动机的扭矩降低了1.6%。在2000 rpm的全开节气门的情况下,E10可使发动机扭矩降低3.4%,而在4000 rpm时,发动机扭矩将降低1.2%。在E20半开油门和rpm 2000的情况下,发动机扭矩降低了5.8%,而在4000 rpm时,发动机扭矩降低了2.7%。对于E20半开节气门,增加涡流发生器将提高发动机性能。平均发动机扭矩从10%上升到13%,在全开节气门的情况下,发动机扭矩增加9%。对于带半开节气门的E10,发动机扭矩增加9%,而带大开节气门则增加8.5%。但是在全开节气门的情况下,产生的排放会更高,增加了50%。

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    Beny Cahyono;

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  • 年度 2015
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