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Miller Cycle Application to the Scuderi Split Cycle Engine (by Downsizing the Compressor Cylinder)

机译:米勒循环应用于Scuderi分流循环发动机(通过缩小压缩机圆筒)

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The Scuderi engine is a split cycle design that divides the four strokes of a conventional combustion cycle over two paired cylinders, one intake/compression cylinder and one power/exhaust cylinder, connected by a crossover port. This configuration provides potential benefits to the combustion process, as well as presenting some challenges. A Miller cycle configuration of the engine is made possible by turbocharging with a downsized compressor cylinder and has been modeled in 1-dimensional cycle simulation software. Several positive interactions were found between the split cycle engine and Miller cycle operating principles, namely: 1) The reduced compression stroke facilitates actual displacement (and physical size) reduction of the split cycle engine, providing a more advantageous brake mean effective pressure (BMEP) characteristic compared to traditional reciprocating internal combustion engines (RICE) with Miller cycle operation. 2) Reduction of the compression cylinder displacement allows Miller cycle operation while still closing the intake valve at an optimum trapped mass condition. This results in more favorable pumping work than the Miller cycle applied to traditional RICE, due to the avoidance of closing the intake valve during a period of high piston velocity. 3) The extremely high turbulence and resulting fast combustion and late fuel addition provides a natural knock avoidance characteristic that allow the utilization of higher boost levels than are typically achievable with stoichiometric, spark-ignited engines. 4) Parametric variations are made across the operating range of the engine, investigating a range of potential Miller factors and boost levels. Analysis is performed to determine engine performance sensitivity to turbomachinery performance. At low load, a secondary level Miller cycle is applied through the use of early intake valve closure to provide near throttle-less load control. Simulation results indicate that high BMEP and good thermal efficiency are achievable in the main operating region. The resulting improvements in thermal efficiency and maximum BMEP provide the potential for significant fuel energy savings in an automotive application. BMEP provides benefits both through the effect of downsizing reducing the mass and size of the engine payload that must be transported, as well as by allowing the engine to operate at a higher operational BMEP and therefore higher efficiency during typical driving conditions.
机译:SCUDERI发动机是一种分开的循环设计,其将传统燃烧循环的四冲程分成两个配对的汽缸,一个进气/压缩圆筒和一个动力/排气圆筒,通过交叉端口连接。这种配置对燃烧过程提供了潜在的好处,以及呈现一些挑战。通过用缩小式压缩机气缸涡轮增压,可以实现发动机的米勒循环配置,并在1维循环仿真软件中建模。在分裂循环发动机和米勒循环操作原理之间发现了几种正相互作用,即:1)减少的压缩冲程有助于减少分流循环发动机的实际位移(和物理尺寸),从而提供更有利的制动器平均有效压力(BMEP)与传统往复式内燃机(米)相比,具有米勒循环操作的特性。 2)减小压缩圆筒位移允许米勒循环操作,同时在最佳捕获的质量条件下仍然关闭进气门。这导致比在高活塞速度期间避免关闭进气门的米勒循环比施加到传统米的米勒循环更有利的泵送工作。 3)极高的湍流和产生的快速燃烧和后期燃料添加提供了自然爆震的特性,其允许利用更高的升压水平,而不是通常可以通过化学计量,火花点燃发动机实现的更高的升压水平。 4)参数变型在发动机的操作范围内进行,研究了一系列潜在的米勒因子和升压水平。进行分析以确定对涡轮机械性能的发动机性能敏感性。在低负荷下,通过使用早期进气门闭合来施加二级水平铣削循环,以提供靠近节流阀的负载控制。仿真结果表明,主要操作区域可实现高BMEP和良好的热效率。由此产生的热效率和最大BMEP的改进提供了汽车应用中显着燃料节能的可能性。 BMEP通过减小必须被运输的发动机有效载荷的质量和尺寸来提供益处,以及允许发动机在更高的操作BMEP下操作,因此在典型的驾驶条件期间更高的效率。

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