288
Views
9
CrossRef citations to date
0
Altmetric
Articles

Two-color pyrometer-based method for measuring temperature profiles and attenuation coefficients in a coal power plant

ORCID Icon, , , , &
Pages 2018-2029 | Received 04 Mar 2018, Accepted 23 May 2018, Published online: 11 Jun 2018

References

  • Andersson, K., et al. 2008. Radiation intensity of propane-fired oxy-fuel flames: Implications for soot formation. Energy Fuels, 22(3), 1535–1541.
  • Askarova, A.S., Bolegenova, S.A., Yu, V., and Maximov, A.B. 2012. Mathematical simulation of pulverized coal in combustion chamber. Procedia Eng., 42, 1150–1156. Available at: http://www.chemistryviews.org/details/event/1362937/20th_International_Congress_of_Chemical_and_Process_Engineering_CHISA_2012.html.
  • Bäckström, D., et al. 2015. Particle composition and size distribution in coal flames – The influence on radiative heat transfer. Exp. Thermal Fluid Sci., 64, 70–80.
  • Ballester, J., and García-Armingol, T. 2010. Diagnostic techniques for the monitoring and control of practical flames. Prog. Energy Combust. Sci., 36(4), 375–411.
  • Bonin, M.P., and Queiroz, M. 1991. Local particle velocity, size, and concentration measurements in an industrial-scale pulverized coal-fired boiler. Combust. Flame, 85(1–2), 121–133.
  • Cashdollar, K.L. 1979. Three-wavelength pyrometer for measuring flame temperatures. Appl. Opt., 18(15), 2595–2597. Available at: http://www.ncbi.nlm.nih.gov/pubmed/20212715.
  • Chedaille, J., and Braud, Y. 1972. Industrial Flames, Edward Arnold, London, Vol. 1.
  • Cheng, Q., et al. 2014. Simultaneous measurement of three-dimensional temperature distributions and radiative properties based on radiation image processing technology in a gas-fired pilot tubular furnace. Heat Transf. Eng., 35(6–8), 770–779.
  • Di Stasio, S., and Massoli, P. 1994. Influence of the soot property uncertainties in temperature and volume-fraction measurements by two-colour pyrometry. Meas. Sci. Technol., 5(12), 1453–1465.
  • Fang, Q., et al. 2010. Numerical simulations of the slagging characteristics in a down-fired, pulverized-coal boiler furnace. Fuel Process. Technol., 91(1), 88–96.
  • Gilabert, G., Lu, G., and Yan, Y. 2005. Three dimensional visualisation and reconstruction of the luminosity distribution of a flame using digital imaging techniques. J. Phys. Conf. Ser., 15(1), 167–171.
  • Godrid, A.M., Jackson, R., and Thurlow, G.G. 1958. The Venturi pneumatic pyrometer. J. Sci. Instrum., 35(3). Available at: http://iopscience.iop.org/article/10.1088/0950-7671/35/3/301.
  • Hjärtstam, S., et al. 2009. Combustion characteristics of lignite-fired oxy-fuel flames. Fuel, 88(11), 2216–2224.
  • Hottel, H.C., and Broughton, F.P. 1932. Determination of true temperature and total radiation from luminous gas flames: use of special two-color optical pyrometer. Ind. Eng. Chem. Anal. Ed., 4(2), 166–175.
  • Huajian, W., et al. 2009. Measurements on flame temperature and its 3D distribution in a 660 MWe arch-fired coal combustion furnace by visible image processing and verification by using an infrared pyrometer. Meas. Sci. Technol., 20(11), 114006. Available at: http://stacks.iop.org/0957-0233/20/i=11/a=114006?key=crossref.5f57898a2cf853137572838585916690.
  • Jenkins, T.P., and Hanson, R.K. 2001. Soot pyrometry using modulated absorption/emission. Combust. Flame, 126(3), 1669–1679.
  • Jorgensen, F.R.A., and Zuiderwyk, M. 1985. Two-colour pyrometer measurement of the temperature of individual combusting particles. J. Phys. E, 18(6), 486–491.
  • Joutsenoja, T., et al. 1997. Pyrometric measurement of the temperature and size of individual combusting fuel particles. Appl. Opt., 36(7), 1525–1535.
  • Khatami, R., and Levendis, Y.A. 2011. On the deduction of single coal particle combustion temperature from three-color optical pyrometry. Combust. Flame, 158(9), 1822–1836.
  • Kuang, M., et al. 2012. Asymmetric combustion characteristics and NO x emissions of a down-fired 300MW e utility boiler at different boiler loads. Energy, 37(1), 580–590.
  • Levendis, Y.A., Estrada, K.R., and Hottel, H.C. 1992. Development of multicolor pyrometers to monitor the transient response of burning carbonaceous particles. Rev. Sci. Instrum., 63(7), 3608–3622.
  • Li, H.Y. 1994. Estimation of the temperature profile in a cylindrical medium by inverse analysis. J. Quant. Spectrosc. Radiat. Transf., 52(6), 755–764.
  • Li, H.Y. 2001. A two-dimensional cylindrical inverse source problem in radiative transfer. J. Quant. Spectrosc. Radiat. Transf., 69(4), 403–414.
  • Liu, D., et al. 2008. Inverse radiation problem of temperature field in three-dimensional rectangular enclosure containing inhomogeneous, anisotropically scattering media. Int. J. Heat Mass Transf., 51(13–14), 3434–3441.
  • Lou, C., and Zhou, H.C. 2005. Deduction of the two-dimensional distribution of temperature in a cross section of a boiler furnace from images of flame radiation. Combust. Flame, 143(1–2), 97–105.
  • Lou, C., et al. 2007. Measurements of the flame emissivity and radiative properties of particulate medium in pulverized-coal-fired boiler furnaces by image processing of visible radiation. Proc. Combust. Inst., 31(2), 2771–2778.
  • Lu, G., and Yan, Y. 2006. Temperature profiling of pulverized coal flames using multicolor pyrometric and digital imaging techniques. IEEE Trans. Instrum. Meas., 55(4), 1303–1308.
  • Mengüc, M.P., and Viskanta, R. 1987. A sensitivity analysis for radiative heat transfer in a pulverized coal-fired furnace. Combust. Sci. Technol., 51(1–3), 51–74.
  • Müller, B., and Renz, U. 2001. Development of a fast fiber-optic two-color pyrometer for the temperature measurement of surfaces with varying emissivities. Rev. Sci. Instrum., 72(8), 3366–3374.
  • Ranganathan, A. 2004. The Levenberg-Marquardt algorithm. Internet Httpexcelsior Cs Ucsb educoursescs290ipdfL MA Pdf, 142(June), 1–5. Available at: http://twiki.cis.rit.edu/twiki/pub/Main/AdvancedDipTeamB/the-levenberg-marquardt-algorithm.pdf.
  • Rego-Barcena, S., et al. 2007. Real time, non-intrusive measurement of particle emissivity and gas temperature in coal-fired power plants. Meas. Sci. Technol., 18(11), 3479–3488.
  • Rinaldi, F., and Najafi, B. 2013. Temperature measurement in WTE boilers using suction pyrometers. Sensors (Switzerland), 13(11), 15633–15655.
  • Schroeder, A.R., et al. 1992. Simultaneous particle morphology and temperature measurements of burning pulverized coal. Symp. (Int.) Combust., 24(1), 1161–1169.
  • Yan, Y., Lu, G., and Colechin, M. 2002. Monitoring and characterisation of pulverised coal flames using digital imaging techniques. Fuel, 81(5), 647–656.
  • Zhang, W., Johnsson, F., and Leckner, B. 1997. Momentum probe and sampling probe for measurement of particle flow properties in CFB boilers. Chem. Eng. Sci., 52(4), 497–509.
  • Zhao, H., and Ladommatos, N. 1998. Optical diagnostics for soot and temperature measurement in diesel engines. Prog. Energy Combust. Sci., 24(3), 221–255.
  • Zhou, H.-C., et al. 2002. An inverse radiative transfer problem of simultaneously estimating profiles of temperature and radiative parameters from boundary intensity and temperature measurements. J. Quant. Spectrosc. Radiat. Transf., 74(5), 605–620.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.