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Development of a general diesel combustion model in the context of large eddy simulation.

机译:在大涡模拟的背景下开发通用柴油机燃烧模型。

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摘要

The current diesel technologies involve various operating conditions that lead to a wide spectrum of combustion regimes. The previous combustion models somehow lack the universality across the combustion regimes or suffer from computational cost. Additionally, they are developed in the context of Reynolds Averaged Navier Stokes (RANS). In modeling engine flows, large eddy simulation (LES) is better than RANS at providing temporal and spatial details in the mixing field. To combustion modeling, this implies that an LES-based combustion model would offer higher predictive accuracy than a RANS-based model. Therefore, the objective of this study was to develop a diesel combustion model that is LES-compatible, efficient, and effective over an extensive range of engine conditions including conventional and low-temperature diesels.;The combustion model was developed to cover major regimes in diesel combustion using the kinetically-controlled, quasi-steady homogeneous, quasi-steady flamelet, and partially-premixed combustion modes. The local combustion regime was identified by two combustion indices based on the local thermodynamic and mixing conditions. In the regimes of kinetically-controlled and quasi-steady homogeneous combustion, the combustion model neglected the subgrid-scale (SGS) mixing effects. In the rest of regimes, the model took the SGS mixing effects into account.;The LES mixing models included a dynamic structure model for subgrid stresses, a one-equation viscosity model for SGS scalar fluxes, an algebraic model for SGS scalar dissipation. The established RANS-based spray and wall models were retained with the RANS-derived scales being replaced by the LES-derived scales. All of the models were incorporated into the KIVA3V code to form an LES package for engine simulations.;The LES package was tested over a wide range of engine conditions including the conventional diesel-type operations and the LTC operations. The predictions and measurements of pressure and heat release rates were in excellent agreement in all of the cases. The models predicted the in-cylinder details of spray, large- and small-scale mixing, and combustion processes accurately. Finally, the present model exhibited advantages in both universality and computational efficiency compared to the previous combustion models, such as the Chemkin model, the characteristic time scale model, and the flamelet time scale model.
机译:当前的柴油技术涉及各种操作条件,从而导致广泛的燃烧方式。先前的燃烧模型以某种方式缺乏整个燃烧方案的通用性或遭受计算成本的困扰。此外,它们是在雷诺平均海军航迹(RANS)的背景下开发的。在对发动机流进行建模时,大涡流仿真(LES)在提供混合场中的时间和空间细节方面比RANS更好。对于燃烧建模,这意味着基于LES的燃烧模型将比基于RANS的模型提供更高的预测准确性。因此,本研究的目的是开发一种柴油燃烧模型,该模型在包括常规柴油和低温柴油在内的各种发动机工况下均与LES兼容,高效且有效。使用动力学控制的准稳定均质,准稳定小火焰和部分预混合燃烧模式进行柴油机燃烧。通过基于局部热力学和混合条件的两个燃烧指数来确定局部燃烧状态。在动力学控制和准稳态均质燃烧的情况下,燃烧模型忽略了亚网格规模(SGS)的混合效应。在其余情况下,该模型考虑了SGS混合效应。LES混合模型包括用于亚网格应力的动态结构模型,用于SGS标量通量的一等粘度模型,用于SGS标量耗散的代数模型。保留了已建立的基于RANS的喷雾和墙面模型,并将RAN派生的比例尺替换为LES派生的比例尺。所有模型都被合并到KIVA3V代码中,以形成用于发动机仿真的LES软件包。LES软件包已在包括常规柴油类型操作和LTC操作在内的各种发动机条件下进行了测试。在所有情况下,压力和放热率的预测和测量结果都非常吻合。这些模型准确地预测了喷雾,大型和小型混合以及燃烧过程的缸内细节。最后,与Chemkin模型,特征时间尺度模型和小火焰时间尺度模型等以前的燃烧模型相比,本模型在通用性和计算效率上均表现出优势。

著录项

  • 作者

    Hu, Bing.;

  • 作者单位

    The University of Wisconsin - Madison.;

  • 授予单位 The University of Wisconsin - Madison.;
  • 学科 Engineering Automotive.;Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 115 p.
  • 总页数 115
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 自动化技术及设备;机械、仪表工业;
  • 关键词

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