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Estimation of potential savings from reducing unburned combustible losses in coal-fired systems

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  • Bahadori, Alireza
  • Vuthaluru, Hari B.

Abstract

A potentially significant loss emanates from the combustion of coal fuels is usually called as the unburned carbon loss. All coal-fired steam generators and coal-fired vessels inherently suffer from efficiency debit attributable to unburnt carbon. The aim of this study is to develop a simple-to-use predictive tool which is easier than existing approaches, less complicated with fewer computations and suitable for engineers to determine the approximate potential savings resulting from reducing unburned coal fuel loss. The proposed method determines the benefits of reducing the combustible losses in terms of annual fuel savings for coal-fired units as a function of percent combustibles in ash, achievable percent combustibles in ash, unit design heat output and average fuel cost. Results show that the proposed predictive tool has a very good agreement with the reported data with average absolute deviation percent being around 1.77%. The proposed method is superior owing to its accuracy and clear numerical background, wherein the relevant coefficients can be retuned quickly for various cases. The developed tool can be of immense practical value for the utility engineers to have a quick check on the benefits of reducing the combustible losses in terms of annual fuel savings for a coal-fired unit for wide range of operating conditions without the necessity of any pilot plant set up and experimental/plant trials. In particular, practice engineers would find the methodology to be user friendly involving transparent calculations with no complex expressions for the design and operation of coal-fired systems such as furnaces and boilers.

Suggested Citation

  • Bahadori, Alireza & Vuthaluru, Hari B., 2010. "Estimation of potential savings from reducing unburned combustible losses in coal-fired systems," Applied Energy, Elsevier, vol. 87(12), pages 3792-3799, December.
  • Handle: RePEc:eee:appene:v:87:y:2010:i:12:p:3792-3799
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    References listed on IDEAS

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    1. Cattaneo, Cristina & Manera, Matteo & Scarpa, Elisa, 2011. "Industrial coal demand in China: A provincial analysis," Resource and Energy Economics, Elsevier, vol. 33(1), pages 12-35, January.
    2. Bahadori, Alireza & Vuthaluru, Hari B., 2010. "A simple method for the estimation of thermal insulation thickness," Applied Energy, Elsevier, vol. 87(2), pages 613-619, February.
    3. Yoo, Seung-Hoon, 2006. "Causal relationship between coal consumption and economic growth in Korea," Applied Energy, Elsevier, vol. 83(11), pages 1181-1189, November.
    4. Wolde-Rufael, Yemane, 2010. "Coal consumption and economic growth revisited," Applied Energy, Elsevier, vol. 87(1), pages 160-167, January.
    5. Bilgen, Selçuk & Kaygusuz, Kamil, 2008. "The calculation of the chemical exergies of coal-based fuels by using the higher heating values," Applied Energy, Elsevier, vol. 85(8), pages 776-785, August.
    6. Yoo, S.-H., 2006. "The causal relationship between electricity consumption and economic growth in the ASEAN countries," Energy Policy, Elsevier, vol. 34(18), pages 3573-3582, December.
    7. Lawrence, Ben & Annamalai, Kalyan & Sweeten, John M. & Heflin, Kevin, 2009. "Cofiring coal and dairy biomass in a 29Â kWt furnace," Applied Energy, Elsevier, vol. 86(11), pages 2359-2372, November.
    8. Bahadori, Alireza & Vuthaluru, Hari B., 2010. "Novel predictive tools for design of radiant and convective sections of direct fired heaters," Applied Energy, Elsevier, vol. 87(7), pages 2194-2202, July.
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