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Improving Air-Fuel Mixing in Diesel Engine Fuelled by Higher Viscous Fuel Using Guide Vane Swirl and Tumble Device (GVSTD)

机译:使用导向叶片旋流和翻滚装置(GVSTD)通过更高粘液燃料加油的柴油机中的空气燃料混合

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Due to depletion of crude oil and exhaust emissions associated with internal combustion engine, biodiesel, neat vegetable oil and waste cooking oil are identified as potential alternative fuels to run on diesel engines. However, the viscosities of these fuels are higher than diesel and can be grouped as higher viscous fuel (HVF). Currently, diesel engines fuelled by HVF experience problems of reduced power and torque besides increased fuel consumption and in-cylinder carbon deposit. These are mainly due to poor combustion as HVF is less prone to evaporate and mix with air. To reduce these problems, a technique to improve the air-fuel mixing in diesel engine fuelled by HVF using Guide Vane Swirl and Tumble Device (GVSTD) is presented in this paper. Validated simulation model for a diesel engine was developed using Solidworks and ANSYS-CFX before 12 GVSTD models were imposed in front of the intake runner with the vane twist angle varied from 3° to 60°. Based on simulation results, the maximum improvements were found by the GVSTD of 35° twist angle. These improvements were about 0.02% in-cylinder pressure, 2.7% turbulence kinetic energy and 1.7% in-cylinder velocities than the base model without GVSTD. These parameters are expected to reduce the penetration length and increase the cone angle of the higher viscous injected fuel with resulting improvement of air-fuel mixing and reduce formation of carbon deposits on the surface of the combustion chamber.
机译:由于与内燃机,生物柴油,整齐植物油相关的原油和废气排放的消耗和废食用油被认定为潜在的替代燃料在柴油发动机上运行。然而,这些燃料的粘度比柴油更高的,并且可以被分组为较高粘性燃料(HVF)。目前,柴油发动机燃料通过降低功耗和除了油耗增加缸内积碳扭矩HVF经验的问题。这些主要是由于燃烧差作为HVF不易蒸发并与空气混合。为了减少这些问题,一种技术,以改善空气 - 燃料在柴油发动机使用导叶旋流和紊流装置(GVSTD)由HVF燃料混合在本文提出。用于柴油发动机验证的仿真模型12种GVSTD型号在进气流道与从3°改变到60°的叶片扭转角的前方被强加之前使用SolidWorks和ANSYS-CFX显影。基于仿真结果,最大的改进是由35°扭曲角的GVSTD找到。这些改进是约0.02%的汽缸内压力,2.7%湍流动能和1.7%缸内速度比没有GVSTD基础模型。这些参数被预期减少穿透长度和增加喷射的燃料与空气 - 燃料混合而产生的改善较高粘性的锥角,并降低燃烧室的表面上形成碳沉积物。

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