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COMBUSTION MODELING SOFTWARE DEVELOPMENT, VERIFICATION AND VALIDATION

机译:燃烧建模软件的开发,验证和验证

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Historically, combustion modeling is important for many transportation- and ground-based applications. More recently, modeling has been offered as an early screening tool in the evaluation of a potential alternative aviation jet fuel. This combustion evaluation path would in theory be conducted by gas turbine Original Equipment Manufacturers (OEMs) on proprietary geometries and conditions. Ideally, OEMs would have access to the latest combustion theory models and would thus have the highest predictive confidence in their model predictions. Unfortunately, the latest combustion theory codes are not written for commercial purposes. This work identifies and develops a conduit for OEM usage of latest flamelet theory for use in the evaluation of alternative jet fuel combustion properties. A so-called "common format routine" (CFR) software with two low-dimensional manifold combustion models that can be used for laminar and turbulent applications is developed, which can be implemented by OEMs on proprietary hardware. The two models are the flamelet prolongation of the intrinsic low-dimensional manifold (FPI), used for premixed combustion, and the flamelet progress variable (FPV), utilized for nonpremixed combustion. The three branches of combustion are computed using a hybrid tool that combines homotopic flamelet calculations with scaling laws and the two- and one-point flamelet continuation methods in order to resolve bifurcations. The mixture fraction and progress variable definitions can be chosen to be any summation of atomic and species composition, respectively. Diffusivity coefficients can be computed using unity Lewis number, mixture-averaged and multicomponent species composition. The turbulence-chemistry interaction is tabulated a priori using Beta probability density function (PDF) for the mixture fraction and Beta or Dirac-delta PDF for the progress variable. Parallel computing is necessary for industrial quality tabulation. The tabulated table can be used for k-ε and k-ω RANS, SAS, DES, and LES simulations. The software can also interact with liquid spray and exchange mass between the liquid and gaseous phase. The software is verified against previous numerical simulations of canonical triple flames, piloted flames and single-cup combustor. The numerical results are validated against experimental measurements of temperature and species mass fractions. The CFR software advances Cantera 2.3. Hence, the software contains an inner layer of C++ code, an intermediate layer of Python wrappers, and an upper layer (GUI) of C# code. The pre-tabulated chemistry is used for CFD simulations. The tables are bi-linearly interpolated for laminar simulations and tri-linearly interpolated for turbulent simulations. The tabulated chemistry can be hooked to commercial software such as Fluent through C and Scheme codes. The simulated flames presented here were computed with this software. The developed software is reliable for modeling and simulation of complex combustion phenomena.
机译:从历史上看,燃烧建模对于许多基于运输和地面的应用都很重要。最近,在评估潜在的替代航空喷气燃料中,已经提供了模型作为早期筛选工具。理论上,该燃烧评估路径将由燃气轮机原始设备制造商(OEM)在专有的几何形状和条件下进行。理想情况下,OEM可以使用最新的燃烧理论模型,因此对模型的预测具有最高的预测信心。不幸的是,最新的燃烧理论代码不是出于商业目的而编写的。这项工作确定并开发了一种导管,供OEM使用最新的小火焰理论用于评估喷气燃料的替代燃烧特性。开发了具有两个低维歧管燃烧模型的所谓“通用格式例程”(CFR)软件,该模型可用于层流和湍流应用,可由OEM在专有硬件上实现。这两个模型分别是用于预混燃烧的固有低维歧管(FPI)的小火焰延伸和用于非预混燃烧的小火焰进展变量(FPV)。使用混合工具计算燃烧的三个分支,该工具将同位小火焰计算与缩放定律以及两点和一点小火焰连续方法相结合,以解决分叉问题。混合分数和进度变量定义可以分别选择为原子和物种组成的任何总和。可以使用统一的Lewis数,混合物平均数和多组分物种组成来计算扩散系数。先验将湍流-化学相互作用制成表格,使用Beta概率密度函数(PDF)表示混合比例,使用Beta或Dirac-delta PDF表示进度变量。并行计算对于工业质量制表是必需的。该表格可以用于k-ε和k-ωRANS,SAS,DES和LES模拟。该软件还可以与液体喷雾相互作用,并在液相和气相之间交换质量。该软件已针对规范三重火焰,引燃火焰和单杯燃烧器的先前数值模拟进行了验证。相对于温度和物种质量分数的实验测量结果验证了数值结果。 CFR软件改进了Cantera 2.3。因此,该软件包含C ++代码的内层,Python包装程序的中间层和C#代码的上层(GUI)。预先列出的化学物质用于CFD模拟。这些表是双线性插值的,用于层流模拟,三线性插值的是用于湍流模拟。列表化的化学物质可以通过C和Scheme代码连接到诸如Fluent之类的商业软件。此处显示的模拟火焰是使用此软件计算的。开发的软件可用于复杂燃烧现象的建模和仿真。

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