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A reduced mechanism for biodiesel surrogates with low temperature chemistry for compression ignition engine applications

机译:用于压缩点火发动机应用的具有低温化学成分的生物柴油替代物的简化机理

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摘要

Biodiesel is a promising alternative fuel for compression ignition (CI) engines. It is a renewable energy source that can be used in these engines without significant alteration in design. The detailed chemical kinetics of biodiesel is however highly complex. In the present study, a skeletal mechanism with 123 species and 394 reactions for a tri-component biodiesel surrogate, which consists of methyl decanoate, methyl 9-decanoate and n-heptane was developed for simulations of 3-D turbulent spray combustion under engine-like conditions. The reduction was based on an improved directed relation graph (DRG) method that is particularly suitable for mechanisms with many isomers, followed by isomer lumping and DRG-aided sensitivity analysis (DRGASA). The reduction was performed for pressures from 1 to 100 atm and equivalence ratios from 0.5 to 2 for both extinction and ignition applications. The initial temperatures for ignition were from 700 to 1800 K. The wide parameter range ensures the applicability of the skeletal mechanism under engine-like conditions. As such the skeletal mechanism is applicable for ignition at both low and high temperatures. Compared with the detailed mechanism that consists of 3299 species and 10806 reactions, the skeletal mechanism features a significant reduction in size while still retaining good accuracy and comprehensiveness. The validations of ignition delay time, flame lift-off length and important species profiles were also performed in 3-D engine simulations and compared with the experimental data from Sandia National Laboratories under CI engine conditions.
机译:生物柴油是一种有前途的替代燃料,可用于压缩点火(CI)发动机。它是一种可再生能源,可以在这些发动机中使用,而无需重大设计更改。然而,生物柴油的详细化学动力学非常复杂。在本研究中,开发了由癸酸甲酯,9-癸酸甲酯和正庚烷组成的三组分生物柴油替代物的123种物种和394个反应的骨架机理,用于模拟发动机3D湍流喷雾燃烧。像条件。减少是基于改进的有向关系图(DRG)方法,该方法特别适用于具有许多异构体的机理,然后进行异构体集总和DRG辅助灵敏度分析(DRGASA)。对于消光和点火应用,在压力为1至100个大气压,当量比为0.5至2的情况下进行了还原。点火的初始温度为700到1800K。宽泛的参数范围确保了骨骼机构在类似发动机的条件下的适用性。因此,骨骼机制可用于在低温和高温下点火。与由3299个物种和10806个反应组成的详细机制相比,该骨骼机制的特点是尺寸显着减小,同时仍保持良好的准确性和全面性。还在3D发动机模拟中验证了点火延迟时间,火焰升起长度和重要物质分布,并与来自桑迪亚国家实验室的CI发动机条件下的实验数据进行了比较。

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