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References

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  1. A. G. Gaydon, H. E. Wolfhard, Flames (Chapman and Hall, London, 1970).
  2. M. L. Elder, J. D. Winefordner, “Temperature Measurements in Flames: a Review,” Prog. Anal. At. Spectrosc. 6, 293 (1983).
  3. W. Zapka, P. Pokrowsky, A. C. Tam, “Noncontact Optoacoustic Monitoring of Flame Temperature Profiles,” Opt. Lett. 7, 477 (1982).
    [CrossRef] [PubMed]
  4. S. W. Kizirnis, R. J. Brecha, B. N. Ganguly, L. P. Goss, R. Gupta, “Hydroxyl (OH) Distributions and Temperature Profiles in a Premixed Propane Flame Obtained by Laser Deflection Techniques,” Appl. Opt. 23, 3873 (1984).
    [CrossRef] [PubMed]
  5. D. F. Grosjean, B. Sarka, L. P. Goss, “Time-Resolved Temperature Measurements in a Laboratory Flame Using the Optoacoustic Beam-Deflection Method,” Opt. Lett. 10, 324 (1985).
    [CrossRef] [PubMed]
  6. A. C. Eckbreth, “Effects of Laser-Modulated Particle Incandescence on Raman Scattering Diagnostics,” J. Appl. Phys. 48, 4473 (1977).
    [CrossRef]
  7. C. J. Dasch, “Continuous-Wave Probe Laser Investigation of Laser Vaporization of Small Soot Particles in a Flame,” Appl. Opt. 23, 2209 (1984).
    [CrossRef] [PubMed]
  8. L. A. Melton, “Soot Diagnostics Based on Laser Heating,” Appl. Opt. 23, 2201 (1984).
    [CrossRef] [PubMed]
  9. A. Rose, R. Gupta, “Application of Photothermal and Photoacoustic Deflection Techniques to Sooting Flames; Velocity Temperature and Concentration Measurements,” Opt. Commun. 56, 303 (1986).
    [CrossRef]

1986 (1)

A. Rose, R. Gupta, “Application of Photothermal and Photoacoustic Deflection Techniques to Sooting Flames; Velocity Temperature and Concentration Measurements,” Opt. Commun. 56, 303 (1986).
[CrossRef]

1985 (1)

1984 (3)

1983 (1)

M. L. Elder, J. D. Winefordner, “Temperature Measurements in Flames: a Review,” Prog. Anal. At. Spectrosc. 6, 293 (1983).

1982 (1)

1977 (1)

A. C. Eckbreth, “Effects of Laser-Modulated Particle Incandescence on Raman Scattering Diagnostics,” J. Appl. Phys. 48, 4473 (1977).
[CrossRef]

Brecha, R. J.

Dasch, C. J.

Eckbreth, A. C.

A. C. Eckbreth, “Effects of Laser-Modulated Particle Incandescence on Raman Scattering Diagnostics,” J. Appl. Phys. 48, 4473 (1977).
[CrossRef]

Elder, M. L.

M. L. Elder, J. D. Winefordner, “Temperature Measurements in Flames: a Review,” Prog. Anal. At. Spectrosc. 6, 293 (1983).

Ganguly, B. N.

Gaydon, A. G.

A. G. Gaydon, H. E. Wolfhard, Flames (Chapman and Hall, London, 1970).

Goss, L. P.

Grosjean, D. F.

Gupta, R.

A. Rose, R. Gupta, “Application of Photothermal and Photoacoustic Deflection Techniques to Sooting Flames; Velocity Temperature and Concentration Measurements,” Opt. Commun. 56, 303 (1986).
[CrossRef]

S. W. Kizirnis, R. J. Brecha, B. N. Ganguly, L. P. Goss, R. Gupta, “Hydroxyl (OH) Distributions and Temperature Profiles in a Premixed Propane Flame Obtained by Laser Deflection Techniques,” Appl. Opt. 23, 3873 (1984).
[CrossRef] [PubMed]

Kizirnis, S. W.

Melton, L. A.

Pokrowsky, P.

Rose, A.

A. Rose, R. Gupta, “Application of Photothermal and Photoacoustic Deflection Techniques to Sooting Flames; Velocity Temperature and Concentration Measurements,” Opt. Commun. 56, 303 (1986).
[CrossRef]

Sarka, B.

Tam, A. C.

Winefordner, J. D.

M. L. Elder, J. D. Winefordner, “Temperature Measurements in Flames: a Review,” Prog. Anal. At. Spectrosc. 6, 293 (1983).

Wolfhard, H. E.

A. G. Gaydon, H. E. Wolfhard, Flames (Chapman and Hall, London, 1970).

Zapka, W.

Appl. Opt. (3)

J. Appl. Phys. (1)

A. C. Eckbreth, “Effects of Laser-Modulated Particle Incandescence on Raman Scattering Diagnostics,” J. Appl. Phys. 48, 4473 (1977).
[CrossRef]

Opt. Commun. (1)

A. Rose, R. Gupta, “Application of Photothermal and Photoacoustic Deflection Techniques to Sooting Flames; Velocity Temperature and Concentration Measurements,” Opt. Commun. 56, 303 (1986).
[CrossRef]

Opt. Lett. (2)

Prog. Anal. At. Spectrosc. (1)

M. L. Elder, J. D. Winefordner, “Temperature Measurements in Flames: a Review,” Prog. Anal. At. Spectrosc. 6, 293 (1983).

Other (1)

A. G. Gaydon, H. E. Wolfhard, Flames (Chapman and Hall, London, 1970).

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Figures (3)

Fig. 1
Fig. 1

Optoacoustic laser-beam deflection apparatus.

Fig. 2
Fig. 2

Reference beam deflection signals.

Fig. 3
Fig. 3

Comparison of OLD and Kurlbaum temperatures.

Equations (2)

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T = c 2 [ m R ( 1 + R / C υ ) ] ,
T f = T a ( υ f / υ a ) 2 = T a ( t a / t f ) 2 .

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