A computational approach to flame hole dynamics using an embedded manifold approach

被引:4
|
作者
Knaus, R. [1 ]
Pantano, C. [1 ]
机构
[1] Univ Illinois, Dept Mech Sci & Engn, Urbana, IL 61801 USA
基金
美国国家科学基金会;
关键词
Flame hole dynamics; Embedded manifold; Extinction/reignition; Turbulent diffusion flames; High-order WENO; Non-conservative systems; PARTIAL-DIFFERENTIAL-EQUATIONS; VOLUME WENO SCHEMES; DIFFUSION FLAME; FINITE-VOLUME; MIXING-LAYER; EDGE FLAMES; HEAT RELEASE; EXTINCTION; COUNTERFLOW; SIMULATION;
D O I
10.1016/j.jcp.2015.04.037
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
We present a new numerical algorithm for tracking the evolution of flame holes in diffusion flames. The key element is the solution of an evolution equation for a flame state field defined on a complex moving surface. The surface itself can evolve in time and is defined implicitly as a level set of an associated Cartesian scalar field. The surface coordinates, or parameterization, do not need to be determined explicitly. Instead, the numerical method employs an embedding technique where the evolution equation is extended to the Cartesian space. In our application, the flame state field represents the chemical activity state of a diffusion flame; i.e. quenched and burning regions of the flame surface. We present a formulation that describes the formation, propagation, and growth of flame holes using edge-flame modeling in laminar and turbulent diffusion flames. The evolution equation is solved using a high-order finite-volume WENO method and a new extension algorithm defined in terms of propagation PDEs. The complete algorithm is demonstrated by tracking the dynamics of flame holes in a turbulent reacting shear layer and its applicability is also demonstrated in a turbulent reacting lifted jet simulation. (C) 2015 Elsevier Inc. All rights reserved.
引用
收藏
页码:209 / 240
页数:32
相关论文
共 50 条
  • [31] A unified coordinates approach to computational fluid dynamics
    Hui, WH
    PROCEEDINGS OF THE 4TH INTERNATIONAL CONFERENCE ON NONLINEAR MECHANICS, 2002, : 58 - 67
  • [32] Investigation of heat dissipation in exhaust manifold using computational fluid dynamics
    Alphonse, Mathew
    Kumar, Ramesh
    INTERNATIONAL JOURNAL OF AMBIENT ENERGY, 2021, 42 (09) : 999 - 1004
  • [33] A collaborating approach for hole detection with the numerical manifold method and Elman neural network
    Zheng, G. Y.
    Li, C. L.
    Guo, D. L.
    Zhang, H. H.
    Ji, X. L.
    Han, S. Y.
    ENGINEERING ANALYSIS WITH BOUNDARY ELEMENTS, 2024, 161 : 214 - 225
  • [34] Computational Fluid Dynamics Analysis of a Vehicle Radiator Using Porous Media Approach
    Aydin, Ahmet
    Engin, Tahsin
    Yasar, Halit
    Yeter, Alper
    Perut, Ahmet Hulusi
    HEAT TRANSFER ENGINEERING, 2021, 42 (11) : 904 - 916
  • [35] One approach for designing hydraulic turbines using computational fluid dynamics (CFD)
    Hagino, M
    PROCEEDINGS OF THE XIX IAHR SYMPOSIUM ON HYDRAULIC MACHINERY AND CAVITATION, VOLS 1 AND 2, 1998, : 192 - 201
  • [36] Multiobjective Optimization of Scramjet Strut Geometry Using Computational Fluid Dynamics Approach
    Pirkandi, Jamasb
    Hashemabadi, Mahdi
    Zakeri, Mahnaz
    JOURNAL OF AEROSPACE ENGINEERING, 2024, 37 (04)
  • [37] Aerodynamic design optimization of an automobile car using computational fluid dynamics approach
    Kumar, Ravi B.
    Varshan, Nitesh M.
    Kannan, T.
    AUSTRALIAN JOURNAL OF MECHANICAL ENGINEERING, 2021, 19 (05) : 495 - 501
  • [38] Subsea Pipelines Leak-Modeling Using Computational Fluid Dynamics Approach
    Yousef, Yousef Abdulhafed
    Imtiaz, Syed
    Khan, Faisal
    JOURNAL OF PIPELINE SYSTEMS ENGINEERING AND PRACTICE, 2021, 12 (01)
  • [39] Computational black hole dynamics
    Laguna, P
    Shoemaker, DM
    PHYSICS OF THE EARLY UNIVERSE, 2005, 653 : 277 - 298
  • [40] Dissipative effects in the worldline approach to black hole dynamics
    Goldberger, Walter D.
    Rothstein, Ira Z.
    PHYSICAL REVIEW D, 2006, 73 (10):