규칙적인 진동 하에서 노즐 부착된 제트화염의 연소특성

A Combustion Characteristics of Attached Jet Flame under the Regular Oscillation

  • 김대원 (전남도립대학 조선기계과) ;
  • 이기만 (순천대학교 기계우주항공공학부)
  • 발행 : 2009.02.28

초록

층류영역의 분출유량에서 큰 가진강도 효과를 얻기 위해 연료관 관 공명주파수로 가진된 비예혼합 분류 화염의 일반적인 가진 연소특성을 실험적으로 조사하였다. 화염 안정화 특성에서는 두 가지 형태의 부상 특성이 존재하는 사실을 알았는데, 화염이 부상되는 가진강도 크기에서 한 쪽은 감소, 다른 영역에서는 증가하는 것으로 나타나 각각 서로 다른 부상기구가 존재함을 확인할 수 있었다. 특히 부상되지 않고 노즐에 부착된 분출유량 영역에서의 가진 연소특성을 가진 강도에 따른 화염 길이와 형상, 유동장 응답 특성 그리고 노즐 출구에서의 유속 분포를 중심으로 집중 조사하였다. 특이한 현상으로는 가진 강도 증가에 따라 화염의 신장과 in-burning 현상 그리고 화염 내 거동 와동들의 말림방향이 서로 역전되는 현상 등이 발견되었다. 노즐 출구의 유속분포와 가시화 기법을 통해 이러한 현상들이 노즐관 관벽 안쪽서부터 음의 속도가 발생하기 시작함에 따라 주변 산화제인 공기가 노즐관 안으로 유입되는 현상과 관련되는 것으로 파악되었다.

A general combustion characteristics of forcing nonpremixed jet in laminar flow rates have been conducted experimentally to investigate the effect of forcing amplitude with the resonant frequency of fuel tube. There are two patterns of the flame lift-off feature according to the velocity increasing; one has the decreasing values of forcing amplitude on the lift-off occurrence when a fuel exit velocity is increasing, while the other has the increasing values. These mean that there are the different mechanisms in the lift-off stability of forced jet diffusion flame. Especially, the characteristics of attached jet flame regime are concentrically observed with flame lengths, shapes, flow response and velocity profiles at the nozzle exit as the central figure. The notable observations are that the flame enlogation, in-homing flame and the occurrence of a vortical motion turnabout have happened according to the increase of forcing amplitude. It is understood by the velocity measurements and visualization methods that these phenomena have been relevance to an entrainment of surrounding oxygen into the fuel nozzle as the negative part of the fluctuating velocity has begun at the inner part of the fuel nozzle.

키워드

참고문헌

  1. L. Vanquickenborne and A. Van Tiggelen, 'The Stabilization Mechanism of Lifted Diffusion Flames', Combustion and Flames, Vol.10, pp.59-69(1966) https://doi.org/10.1016/0010-2180(66)90028-9
  2. A.J. Yule, 'Large Scale Structure in the Mixing Layer of a Round Jet', J. Fluid Mech., Vol.89, pp. 413-432(1978) https://doi.org/10.1017/S0022112078002670
  3. W.S. Anthony and J.C. Brian, 'Visualization of the Structure of a Pulsed Methane-air Diffusion Flame', Phys. Fluids, Vol.28, No.8, pp.2317-2330(1985) https://doi.org/10.1063/1.865288
  4. A.K.M.F. Hussain, 'Coherent Structures and Turbulence', J. Fluid Mech., Vol.173, pp.303-356 (1986) https://doi.org/10.1017/S0022112086001192
  5. Y.C. Chao and M.S. Jeng, "Behavior of the Lifted Flame under Acoustic Excitation", 24th Sym. on Combustion, pp.333-340(1994) https://doi.org/10.1016/S0082-0784(06)80044-5
  6. T.K. Kim, J. Park, and H.D. Shin, 'Mixing Mechanism Near the Nozzle Exit in a Tone Eecited Nonpremixed Jet Flame', Combustion Science and Technology, Vol. 89, pp.83-100(1993) https://doi.org/10.1080/00102209308924104
  7. S.K. Oh, 'An Experimental Study on the Structure of Forced Jets and Jet Diffusion Flames', Ph. D. Thesis, KAIST(1997)
  8. S.K. Oh and H.D. Shin, 'A Visualization Study on the Effect of Forcing Amplitude of Tone Excited Isothermal Jets and Jet Diffusion Flames', Int. J. of Energy and Resource, Vol.22, pp.343-354(1998) https://doi.org/10.1002/(SICI)1099-114X(19980325)22:4<343::AID-ER370>3.0.CO;2-N
  9. K.M. Lee and S.K. Oh, 'A Visual Investigation of Nonpremixed Flame behavior under Acoustic Excitation', '01 Spring Annual Conference, KSME, pp.871-877(2001)
  10. F. Baillot and D. Demare, 'Physical Mechanisms of a Lifted Nonpremixed Flame Stabilized in an Acoustic Field, Combustion Science and Technology, Vol.174, No.8, pp.73-98(2002) https://doi.org/10.1080/713713066
  11. K.M. Lee, 'Effects of Flow Excitation on the Nitrogen Oxide Emission of a Nonpremixed Flame', J. of Korean Institute of Fire Sci. & Eng., Vol.18, No.2, pp.34-40(2004)
  12. D. Demare and F. Baillot, 'Acoustic Enhancement of Combustion in Lifted Nonpremixed Jet Flames, Combustion and Flame, Vol.139, pp.312-328(2004) https://doi.org/10.1016/j.combustflame.2004.09.004
  13. M. Suzuki, T. Atarahi and W. Masuda, 'Behavior and Structure of Internal Fuel-jet in Diffusion Flame under Transverse Acoustic Excitation', Combustion Science and Technology, Vol.179, pp.2581-2597 (2007) https://doi.org/10.1080/00102200701487012