A Study On the Radiation Corrections Applied to Thermocouple Measurements in Non-premixed Counterflow Flames

비예혼합 역류화염에서 열전대 측정을 적용하기 위한 복사보정에 관한 연구

  • 오율권 (조선대학교 기계공학부) ;
  • 허준영 (트렉셀대학교 기계공학과) ;
  • 차경옥 (명지대학교 기계공학부)
  • Published : 2002.03.01

Abstract

The temperature field of a counterflow non-premixed flame is investigated using thermocouples of two sizes. A thermal balance is performed on the thermocouple in order to calculate the magnitude of the radiation corrections involved. Both the thermocouple wire and bead are separately considered to be the relevant thermal surface to which convective heat transfer takes place, and from which radiation lasses occur. The flame is also simulated by using a detailed chemical kinetic mechanism in a previously developed computer code. The local thermo-physical properties of the gas mixture, required to calculate the corrections, are determined both from the simulation, and by approximating the properties of the mixture as those of molecular nitrogen at the measured temperatures. It is concluded that the thermocouple wire is the appropriate thermal surface to which radiation corrections apply, in the absence of information about the gas mixture, its properties can be reasonably approximated by those of nitrogen rm ($N_2$), and the radiation corrections are very sensitive to misalignments in the temperature and velocity fields.

Keywords

References

  1. Fourth Symposium (International)on Combustion Friedman R
  2. J.Chemical Physics v.22 Friedman R;Burde E https://doi.org/10.1063/1.1740197
  3. Sixth Symposium(International) Kaskan W.E
  4. AICHE J. v.30 Seshadri K;Rosner D.E https://doi.org/10.1002/aic.690300204
  5. Flame Structure Fristrom R.M;Westenberg A.A
  6. Technical Report NBS-GCR-82-367 An investigation of sxisymmeteric buoyant diffusion flames Jeng S.M;Chen L.D;Faeth G.M
  7. Comcust.Flame v.68 Hamins A;Seshadri K https://doi.org/10.1016/0010-2180(87)90006-X
  8. Heat Transfer(4th Edition) Chapman A.J
  9. Analysis of Heat transfer Eckert E.R.G;Drake R.M
  10. Principles of Heat Transfer(4th Edition) Kreith F;Bohn M.S
  11. Experiments in Fluids v.11 Rolon J.C;Veynante D;Martin J.P;Durst F https://doi.org/10.1007/BF00194863
  12. Combust.Flame v.92 Yang G;Kennedy I.M https://doi.org/10.1016/0010-2180(93)90207-J
  13. Combust.Flame v.83 Drake M.C;Blint R.J
  14. Ph.D.thesis Puri I.K
  15. Combust.Flame v.91 The structure and extinction of nonpremixed methyl chloride and methyl chloride/methane air flames Huh J.Y;Lee K.Y;Puri I.K
  16. Combust.Flame v.92 Lee K.Y;Yang M.H;Puri I.K https://doi.org/10.1016/0010-2180(93)90196-A
  17. Combust.Flame v.94 Yang M.H;Puri I.K https://doi.org/10.1016/0010-2180(93)90016-V
  18. Combust.Flame v.14 Kent J.H https://doi.org/10.1016/S0010-2180(70)80040-2
  19. Combust.Flame v.8 Cookson R.A;Dunham P.G;Kilham J.K https://doi.org/10.1016/0010-2180(64)90049-5
  20. Combust.Sci.and Tech. v.81 Burton K.A;Ladoucer H.D;Fleming J.W https://doi.org/10.1080/00102209208951798
  21. Handbook of Physical Properties of Gases and Liquids(2nd Edition) Vargaftik N.B
  22. Thermal Radiative Properties-Coatings v.8 Thermophysical Properties of Matter Touloukian Y.S;Dewitt D.P;Herniez R.S
  23. Thermophysical Properties of High Temperature Solid Materials v.4 Touloukian Y.S(Ed.)
  24. Technical Report CUED/A-THERMO/TR39 RUN-IDS:A computer program for the simulation of one-dimensional chemically reacting flows Rogg B
  25. Prog.Energy Combust.Sci. v.15 Miller J.A;Bowman C.T https://doi.org/10.1016/0360-1285(89)90017-8
  26. Combust.Sci.Tech. v.74 Barat R.B;Sarofim A.F;Longwell J.P;Bozzelli J.W https://doi.org/10.1080/00102209008951698
  27. Twenty-third Symposium(International)on Combustion Chelliah H.K;Law C.K;Ueda T;Smooke M.D;Williams F.A