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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Development of a skeletal mechanism for heavy-duty engines fuelled by diesel and natural gas
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Development of a skeletal mechanism for heavy-duty engines fuelled by diesel and natural gas

机译:柴油和天然气推动的重型发动机骨骼机制的发展

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The purpose of this work is to develop a skeletal dual-fuel mechanism for heavy-duty engines fuelled by diesel and natural gas. With diesel fuel modeled as n-heptane, and natural gas modeled as methane, the skeletal mechanism was constructed by coupling the two skeletal mechanisms reduced detailed mechanisms: n-heptane and methane mechanisms. Directed relation graph error propagation and sensitivity analysis, computational singular perturbation and reaction rate adjustment methods were employed for mechanism reduction. The final skeletal dual-fuel mechanism is composed of 61 species and 199 reactions. So as to validate the fidelity of the novel skeletal dual-fuel mechanism, zero-dimension ignition delay testing against shock tube experimental results and 3-dimensional engine validation about in cylinder pressures, heat release rates and NOx and CO emissions against engine testing results were performed under various operating conditions. The validation results indicate that the dual-fuel mechanism can accurately reproduce the ignition behaviors, combustion characteristics and emission trends in heavy-duty diesel/NG dual-fuel engines. Besides, a parallel computing method based on the round-robin algorithm was developed which can significantly save the time for calculating. Combined with the new developed skeletal dual-fuel mechanism, the 3D CFD simulation for the combustion in heavy-duty engines can be done in a reasonable computational time. (C) 2017 Elsevier Ltd. All rights reserved.
机译:这项工作的目的是为柴油和天然气推动的重型发动机开发骨骼双燃料机制。用柴油燃料建模为正庚烷,并为甲烷建模的天然气,通过偶联两种骨骼机制来构建骨骼机制,减少了细化机制:正庚烷和甲烷机制。定向关系图误差传播和灵敏度分析,采用计算奇异扰动和反应速率调节方法进行机制减少。最终的骨骼双燃料机制由61种和199种和199种。因此,为了验证新型骨骼双燃料机制的保真度,零维点火延迟测试防止冲击管实验结果和关于气缸压力的三维发动机验证,热释放率和NOx以及针对发动机测试结果的共同排放在各种操作条件下进行。验证结果表明,双燃料机构可以精确地再现重型柴油/ NG双燃料发动机的点火行为,燃烧特性和排放趋势。此外,开发了一种基于循环算法的并行计算方法,可以显着节省计算的时间。结合新开发的骨骼双燃料机制,可以在合理的计算时间内进行重型发动机中燃烧的3D CFD仿真。 (c)2017 Elsevier Ltd.保留所有权利。

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