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

机译:乙醇燃料混合物旋流在进气歧管对发动机性能的影响

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Ethanol fuel is widely used as an alternative fuel in spark ignition engines. The use of ethanol reduces dependence on fuel from the fraction of hydrocarbons. As such, adding swirl generators to the intake manifold aims to make the internal airflow more turbulent. The influence of swirl on the performance, emissions, and combustion in a constant speed Spark Ignition (SI) engine was studied experimentally. Also, the effects of the addition of ethanol in the fuel on engine performance and emissions under development of the intake manifold with a swirl generator were determined. Thus, the study analyses the effects of adding a swirl generator to the intake manifold on engine performance, fuel consumption, and emissions produced. Influence of the swirl generator on the airflow and swirl pattern testing is done on the three types of swirl generators, which are the concave, flat bottom, and symmetrical with different angle positions. Engine experiment was performed at 2,000, 2,500, 3,000, 3,500, 4,000, 4,500, and 5,000 rpm engine speed at WOT using a concave swirl type generator. Response Surface method (RSM) was used to find the optimum intake manifold design according to response (flow and swirl) and independent variables (a type of swirl generators and angle positions). The concave swirl type generator at 6.53 angle position is considered to be optimum for this particular engine. The highest engine torque and BSFC were with a swirl generator intake manifold. The HC and CO emissions increased with intake manifold with a swirl generator. The CO2 emission reduced with swirl generator intake manifold by 2%, 3%, and 5% with gasoline E10 and E20 compared to the standard intake manifold.
机译:乙醇燃料广泛用作火花点火发动机中的替代燃料。乙醇的使用减少了对烃的级分的依赖性。因此,将旋流发电机添加到进气歧管上的旨在使内部气流更加湍流。实验研究了恒速火花点火(Si)发动机在恒速火花点火(Si)发动机的性能,排放和燃烧对性能,排放和燃烧的影响。此外,确定了在发动机性能和具有旋流发电机的进气歧管的发动机性能和排放的燃料中加入乙醇的影响。因此,该研究分析了将旋流发生器添加到发动机性能,燃料消耗和产生的排放的进气歧管中的效果。旋流发生器对气流和旋流图案测试的影响是在三种类型的涡流发生器上完成,它们是凹形,平底和具有不同角度位置的对称。使用凹旋旋流发生器,在WOT下以2,000,2,500,3,000,3,500,3,500,3,500,3,500,3,500,3,500,3,000,4,500和5,000 rpm发动机速度进行发动机实验。响应面法(RSM)用于根据响应(流动和旋涡)和独立变量(一种涡流发生器和角度位置)来找到最佳进气歧管设计。对于该特定发动机,认为凹旋旋型发生器处于6.53角度位置。最高发动机扭矩和BSFC采用旋流发生器进气歧管。 HC和CO排放随着带有涡流发电机的进气歧管而增加。与标准进气歧管相比,CO2发射通过汽油E10和E20的旋涡发电机进气歧管减少2%,3%和5%。

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