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Numerical investigation on the effects of bore reduction in a high performance turbocharged GDI engine. 3D investigation of knock tendency

机译:高性能涡轮增压GDI发动机孔减小效应的数值研究。 3D调查爆震趋势

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Downsizing is a must for current high performance turbocharged SI engines. This is often achieved through the reduction of cylinder number, while keeping constant unit displacement and increasing boost pressure. However, the ensuing higher loads strongly increases the risk of abnormal combustion and thermo-mechanical failures. An alternative path to downsizing is the reduction of cylinder bore: this approach is more expensive, requiring a brand new design of the combustion system, but it also provides some advantages. The goal of the present paper is to explore the potential of bore reduction for achieving a challenging downsizing target, while preserving the engine knock safety margins. A current V8 GDI turbocharged sporting engine is taken as a reference, and a preliminary CFD-3D analysis is carried out in order to define the most suitable bore-to-stroke ratio. On this basis, bore is reduced by 11% at constant stroke, thus obtaining a reduction of about 20% on the engine displacement. In order to achieve the same peak power target, both engine boost and spark advance are adjusted until the knock safety margin of the original engine is met. 3D CFD tools, accurately calibrated on the reference engine, are used to address engine design and the calibration of the operating parameters.
机译:缩小规模是目前高性能涡轮增压的SI发动机的必备。这通常通过减小圆柱数来实现,同时保持恒定的单元位移并增加增压压力。然而,随后的载荷强烈增加了异常燃烧和热机械故障的风险。缩小尺寸的替代路径是汽缸孔的减少:这种方法更昂贵,需要一个燃烧系统的全新设计,但它也提供了一些优点。本文的目的是探讨钻孔减少的钻孔减少尺寸目标的潜力,同时保留发动机爆震安全利润率。将电流V8 GDI涡轮增压运动引擎作为参考,进行初步CFD-3D分析,以便定义最合适的孔隙率比。在此基础上,在恒定行程中孔减少11%,从而在发动机位移上获得约20%的减少。为了实现相同的峰值功率目标,调整发动机提升和火花提前,直到满足原始发动机的爆震安全裕度。 3D CFD工具在参考引擎上准确校准,用于解决发动机设计和操作参数的校准。

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