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Calculation of higher and lower heating values and chemical exergy values of liquid products obtained from pyrolysis of hazelnut cupulae

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  • Bilgen, Selçuk
  • Keleş, Sedat
  • Kaygusuz, Kamil

Abstract

The purpose of this study is to evaluate the chemical exergy (eCH), the higher heating value (HHV) and the lower heating value (LHV) of liquid products obtained from catalytic fast pyrolysis of hazelnut cupulae. In this study, the first and the second law of fast pyrolysis products of a biomass sample investigated experimentally in fixed-bed reactor under various conditions have been done. Calculations showed that the chemical composition of liquid products obtained from catalytic fast pyrolysis of hazelnut cupulae influences strongly eCH, HHV and LHV. High proportions of oxygen, compared to carbon or hydrogen, generally reduce eCH, HHV and LHV of these liquid products. Studies on the pyrolytic oil showed that the oil obtained from hazelnut cupulae can be used as a renewable fuel and chemical feedstock. The chemical exergy value and the higher heating value of this oil are 35.72 MJ/kg and 35.70 MJ/kg, respectively.

Suggested Citation

  • Bilgen, Selçuk & Keleş, Sedat & Kaygusuz, Kamil, 2012. "Calculation of higher and lower heating values and chemical exergy values of liquid products obtained from pyrolysis of hazelnut cupulae," Energy, Elsevier, vol. 41(1), pages 380-385.
  • Handle: RePEc:eee:energy:v:41:y:2012:i:1:p:380-385
    DOI: 10.1016/j.energy.2012.03.001
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    1. Fagbemi, L & Khezami, L & Capart, R, 2001. "Pyrolysis products from different biomasses: application to the thermal cracking of tar," Applied Energy, Elsevier, vol. 69(4), pages 293-306, August.
    2. Martínez, Amaya & Uche, Javier, 2010. "Chemical exergy assessment of organic matter in a water flow," Energy, Elsevier, vol. 35(1), pages 77-84.
    3. 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.
    4. Bilgen, Selçuk & Keles, Sedat & Kaygusuz, Abdullah & SarI, Ahmet & Kaygusuz, Kamil, 2008. "Global warming and renewable energy sources for sustainable development: A case study in Turkey," Renewable and Sustainable Energy Reviews, Elsevier, vol. 12(2), pages 372-396, February.
    5. Hermann, Weston A., 2006. "Quantifying global exergy resources," Energy, Elsevier, vol. 31(12), pages 1685-1702.
    6. Dogru, M. & Howarth, C.R. & Akay, G. & Keskinler, B. & Malik, A.A., 2002. "Gasification of hazelnut shells in a downdraft gasifier," Energy, Elsevier, vol. 27(5), pages 415-427.
    7. Durmayaz, Ahmet & Yavuz, Hasbi, 2001. "Exergy analysis of a pressurized-water reactor nuclear-power plant," Applied Energy, Elsevier, vol. 69(1), pages 39-57, May.
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