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The study of spray impingement on a heated metal plate inside a low-speed wind tunnel

机译:低速风洞内加热金属板上的喷雾撞击研究

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Gasoline direct injection (GDI) is considered as an important energy-saving technology in the automobile industry. In recent years, Europe, USA, and Japan have spent a lot of efforts on research regarding GDI issues. GDI engineers apply spray impingement to enhance the fuel/air mixing process. Therefore, spray impingement dominates the GDI engine's emissions and combustion efficiency. A spray injection diagnosis system is assembled for observing the spray impingement on a heated metal plate in order to simulate the spray characteristics inside the engine intake system. The experimental parameters include the fuel injection pressure, the spray impinging angle, the metal plate's surface temperature, and the cross-wind speed. If the injection pressure is increased, the spray impingement rebounding and spreading are enhanced and a liquid film is clearly formed on the impinged site (flooded mode). When the metal plate is heated to 130-180°C, the liquid film starts to boil and disappear quickly (dry mode). When the temperature is above 180°C, the liquid film separates from the metal plate due to fast evaporation, which occurs between the liquid film and metal plate (boiling mode). If the impinging angle increases from 15° to 45°, the downstream spray splashing and liquid film movement phenomena are enhanced. The liquid film appears as an oval shape. By adding 5 and 12 m/s cross-winds, the fuel spray centerline is bent. The cross-wind also enhances the evaporating effect and shrinks the film's diameter earlier.View full textDownload full textKeywordsspray impingement, injector, wind tunnel, two-phase flowRelated var addthis_config = { ui_cobrand: "Taylor & Francis Online", services_compact: "citeulike,netvibes,twitter,technorati,delicious,linkedin,facebook,stumbleupon,digg,google,more", pubid: "ra-4dff56cd6bb1830b" }; Add to shortlist Link Permalink http://dx.doi.org/10.1080/02533839.2011.565611
机译:汽油直喷(GDI)被认为是汽车工业中的一项重要节能技术。近年来,欧洲,美国和日本在有关GDI问题的研究上花费了大量精力。 GDI工程师采用喷雾撞击来增强燃料/空气混合过程。因此,喷雾撞击支配着GDI发动机的排放和燃烧效率。组装喷射诊断系统以观察喷射到加热的金属板上的冲击,以便模拟发动机进气系统内部的喷射特性。实验参数包括喷油压力,喷射冲击角,金属板的表面温度和侧风速度。如果增加注射压力,则喷射冲击的反弹和散布会增强,并且在冲击部位会明显形成液膜(溢流模式)。当金属板加热到130-180°C时,液膜开始沸腾并迅速消失(干模)。当温度高于180°C时,由于快速蒸发,液膜与金属板分离,这发生在液膜和金属板之间(沸腾模式)。如果撞击角度从15°增加到45°,则会增强下游的喷雾飞溅和液膜移动现象。液膜呈椭圆形。通过增加5和12 m / s的侧风,燃油喷雾中心线弯曲。侧风还增强了蒸发效果并更早地缩小了胶片的直径。查看全文下载全文关键字喷雾冲击,喷射器,风洞,两相流相关var addthis_config = {ui_cobrand:“泰勒和弗朗西斯在线”,service_compact:“ citeulike, netvibes,推特,technorati,可口,linkedin,facebook,stumbleupon,digg,google,更多”,发布:“ ra-4dff56cd6bb1830b”};添加到候选列表链接永久链接http://dx.doi.org/10.1080/02533839.2011.565611

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