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Isobaric Combustion: A Potential Path to High Efficiency, in Combination with the Double Compression Expansion Engine (DCEE) Concept

机译:同学燃烧:高效率的潜在路径,与双压缩膨胀发动机(DCEE)概念组合

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The efficiency of an internal combustion engine is highly dependent on the peak pressure at which the engine operates. A new compound engine concept, the double compression expansion engine (DCEE), utilizes a two-stage compression and expansion cycle to reach ultrahigh efficiencies. This engine takes advantage of its high-integrity structure, which is adapted to high pressures, and the peak motored pressure reaches up to 300 bar. However, this makes the use of conventional combustion cycles, such as the Seiliger-Sabathe (mixed) or Otto (isochoric) cycles, not feasible as they involve a further pressure rise due to combustion. This study investigates the concept of isobaric combustion at relatively high peak pressures and compares this concept with traditional diesel combustion cycles in terms of efficiency and emissions. Multiple consecutive injections through a single injector are used for controlling the heat release rate profile to achieve isobaric heat addition. In this study, the intake pressure is varied to enable a comparison between the isobaric cases with different peak pressures, up to 150 bar, and the mixed cycle cases. Tests are performed at several different levels of EGR. The experiments are performed on a 12.8 L displacement 6-cylinder Volvo D13C500 engine utilizing a single cylinder with a standard 17-compression-ratio piston. In this study, the cylinder represents the high-pressure unit of the DCEE. The fuel used in all the experiments is a standard EU diesel. In each target condition, the different injection strategies are compared with the total amount of fuel kept relatively constant. The results prove that the isobaric combustion concept is feasible with a traditional injection system and can achieve gross indicated efficiencies close to or higher than those of a conventional diesel combustion cycle. Moreover, the results show that with an isobaric cycle, heat transfer losses can be reduced by over 20%. However, the exhaust energy is higher, which can eventually be recovered in the second stage of expansion. Thus, this cycle could be suitable for the DCEE concept. The CO, UHC and soot emission levels are proven to be fairly similar to those of the conventional diesel combustion. However, the NO_x emissions are significantly lower for the isobaric combustion.
机译:内燃机的效率高度依赖于发动机操作的峰值压力。一种新的复合发动机概念,双压缩膨胀发动机(DCEE)利用了两级压缩和扩展周期来达到超高效率。该发动机利用其高完整性结构,该结构适应高压,峰值电动压力达到300巴。然而,这使得使用常规燃烧循环,例如Seiliger-sabathe(混合)或奥托(异种)循环,而不可行,因为它们涉及由于燃烧引起的进一步的压力上升。本研究调查了在相对高的峰值压力下对等异燃烧的概念,并将这种概念与传统的柴油燃烧循环在效率和排放方面进行了比较。通过单个注射器的多次连续注射用于控制热释放率曲线以实现异驱搅拌。在这项研究中,改变进气压力以使具有不同峰值压力的等异质壳体之间的比较,高达150巴,以及混合循环壳体。在几种不同级别的EGR中进行测试。该实验在12.8L位移6缸沃尔沃D13C500发动机上进行,利用具有标准17-压缩比活塞的单个气缸。在该研究中,汽缸代表DCEE的高压单元。所有实验中使用的燃料是标准欧盟柴油。在每个目标条件下,将不同的喷射策略与保持相对恒定的总量进行比较。结果证明,异物燃烧概念与传统的注射系统可行,并且可以实现靠近或高于传统柴油燃烧循环的总指示效率。此外,结果表明,通过同步循环,传热损耗可降低超过20%。然而,排气能量越高,最终可以在膨胀的第二阶段中恢复。因此,这个循环可能适合于DCEE概念。证明是CO,UHC和烟灰发射水平与传统柴油燃烧的燃烧相同。但是,对于异巴燃烧,NO_X排放显着降低。

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