THERMOCHEMICAL CONVERSION BEHAVIOUR OF DIFFERENT BIOMASS FEEDSTOCKS: PYROLYSIS AND GASIFICATION

Volume: 3 Number: 3 January 8, 2017
  • Işıl Gülsaç
  • Yeliz Çetin
  • Berrin Engin
  • Parvana Aksoy
  • Hakan Karataş
  • Alper Sarıoğlan
EN

THERMOCHEMICAL CONVERSION BEHAVIOUR OF DIFFERENT BIOMASS FEEDSTOCKS: PYROLYSIS AND GASIFICATION

Abstract

n this study, a bench-scale bubbling fluidized bed (BFB) gasifier and thermogravimetric analyzer (TGA) were applied for the determination of the thermochemical conversion reactivity of biomass fuels under both gasification and pyrolysis conditions. Six different biomass feedstocks, namely; straw pellet (SP), softwood pellet (WP), torrefied wood chips (TWC), pyrolysis char (PC), miled sunflower seed (MSS) and dried distillers’ grains and solubles (DDGS) were investigated. TGA of biomass feedstocks were carried out under pyrolysis conditions at four different heating rates (2-15 °C/min). Raw data obtained from the experiments were used to calculate the kinetic parameters (A, Ea) of the samples by using two different models; Coats-Redfern and Isoconversional Method. TGA analysis showed that pyrolysis char was the only sample having decomposition temperature above 800 K since it was the pre-pyrolized sample before the gasification. According to DTG profiles, two peaks and two shoulders at around 450-650 K were observed for DDGS whereas no peaks were detected for pyrolysis char as the indication of absence of volatiles/cellulosic components. It was seen that the highest devolatization rates and devolatization temperatures (associated mainly with cellulose decomposition) were obtained for softwood and torrefied wood samples, which had the least char yields among the other biomass feedstocks. It was seen that WP was more reactive for thermochemical conversion and less prone to agglomeration. Furthermore high ash content and agglomeration index of MSS were the potential drawbacks in front of its utilization via thermochemical conversion. During the air gasification of these feedstocks (except DDGS), the product syngas was characterized in terms of main gas composition, tar and sulfur compounds. It was shown that the highest cold gas efficiency, carbon conversion and calorific value were obtained for the gasification of SP. On the other hand, SP had some drawbacks regarding its high agglomeration tendency and low deformation temperature. Among all feedstocks, gasification reactivity of MSS was found to be quite poor. MSS seemed to expose to pyrolization instead of gasification. WP and TWC were gasified with acceptable conversion values and efficiencies when compared with SP. It was understood that WP is the preferred choice for the thermochemical conversions.

References

  1. Fang Z, Sato T, Smith R, Inomata H, Arai K, Kozinski J. Reaction chemistry and phase behaviour of lignin in high temperature and supercritical water. Bioresource Technology. 2008; 99: 3424-30. DOI: 10.1016/j.biortech.2007.08.008.
  2. Kirubakaran V, Sivaramakrishnan V, Nalini R, Sekar T, Premalatha M, Subramanian P. A review on gasification of biomass. Renewable and Sustainable Energy Reviews. 2009; 13:179-86. DOI: 10.1016/j.rser.2007.07.001.
  3. McKendry P. Energy production from biomass (part 3): gasification technologies. Bioresource Technology. 2002;83:55-63. DOI: 10.1016/S0960-8524(01)00120-1.
  4. Gabra M, Pettersson E, Backman R, Kjellstrom B. Evaluation of cyclone gasifier performance for gasification of sugarcane residue-Part 1: gasification of bagasse. Biomass and Bioenergy. 2001; 21:351-69. DOI: 10.1016/S0961-9534(01)00043-5.
  5. Boateng A A, Walawender W P, Fan L T, Chee C S. Fluidized-bed steam gasification of rice hull. Bioresource and Biotechnology. 1992; 40: 235-39. DOI: 10.1016/0960-8524(92)90148-Q.
  6. Lv P M, Xiong Z H, Chang J, Wu C X, Chen Y, Zhu J X. An experimental study on biomass air-steam gasification in a fluidized bed. Bioresource Technology. 2004; 95: 95-101. DOI: 10.1016/j.biortech.2004.02.003.
  7. Rapagna S, Jand N, Kiennemann A, Foscolo P U. Steam-gasification of biomass in a fluidized-bed of olivine particles. Biomass and Bioenergy. 2000; 19: 187-97. DOI: 10.1016/S0961-9534(00)00031-3.
  8. S. Rapagna S, A. Latif A. Steam gasification of almond shells in a fluidized bed reactor: The influence of temperature and particle size on product yield and distribution. Biomass and Bioenergy. 1997; 12: 281-88. DOI: 10.1016/S0961-9534(96)00079-7.

Details

Primary Language

English

Subjects

-

Journal Section

-

Authors

Yeliz Çetin This is me

Berrin Engin This is me

Parvana Aksoy This is me

Hakan Karataş This is me

Alper Sarıoğlan This is me

Publication Date

January 8, 2017

Submission Date

July 4, 2016

Acceptance Date

-

Published in Issue

Year 2016 Volume: 3 Number: 3

APA
Gülsaç, I., Çetin, Y., Engin, B., Aksoy, P., Karataş, H., & Sarıoğlan, A. (2017). THERMOCHEMICAL CONVERSION BEHAVIOUR OF DIFFERENT BIOMASS FEEDSTOCKS: PYROLYSIS AND GASIFICATION. Journal of the Turkish Chemical Society Section A: Chemistry, 3(3), 731-746. https://doi.org/10.18596/jotcsa.287307
AMA
1.Gülsaç I, Çetin Y, Engin B, Aksoy P, Karataş H, Sarıoğlan A. THERMOCHEMICAL CONVERSION BEHAVIOUR OF DIFFERENT BIOMASS FEEDSTOCKS: PYROLYSIS AND GASIFICATION. JOTCSA. 2017;3(3):731-746. doi:10.18596/jotcsa.287307
Chicago
Gülsaç, Işıl, Yeliz Çetin, Berrin Engin, Parvana Aksoy, Hakan Karataş, and Alper Sarıoğlan. 2017. “THERMOCHEMICAL CONVERSION BEHAVIOUR OF DIFFERENT BIOMASS FEEDSTOCKS: PYROLYSIS AND GASIFICATION”. Journal of the Turkish Chemical Society Section A: Chemistry 3 (3): 731-46. https://doi.org/10.18596/jotcsa.287307.
EndNote
Gülsaç I, Çetin Y, Engin B, Aksoy P, Karataş H, Sarıoğlan A (January 1, 2017) THERMOCHEMICAL CONVERSION BEHAVIOUR OF DIFFERENT BIOMASS FEEDSTOCKS: PYROLYSIS AND GASIFICATION. Journal of the Turkish Chemical Society Section A: Chemistry 3 3 731–746.
IEEE
[1]I. Gülsaç, Y. Çetin, B. Engin, P. Aksoy, H. Karataş, and A. Sarıoğlan, “THERMOCHEMICAL CONVERSION BEHAVIOUR OF DIFFERENT BIOMASS FEEDSTOCKS: PYROLYSIS AND GASIFICATION”, JOTCSA, vol. 3, no. 3, pp. 731–746, Jan. 2017, doi: 10.18596/jotcsa.287307.
ISNAD
Gülsaç, Işıl - Çetin, Yeliz - Engin, Berrin - Aksoy, Parvana - Karataş, Hakan - Sarıoğlan, Alper. “THERMOCHEMICAL CONVERSION BEHAVIOUR OF DIFFERENT BIOMASS FEEDSTOCKS: PYROLYSIS AND GASIFICATION”. Journal of the Turkish Chemical Society Section A: Chemistry 3/3 (January 1, 2017): 731-746. https://doi.org/10.18596/jotcsa.287307.
JAMA
1.Gülsaç I, Çetin Y, Engin B, Aksoy P, Karataş H, Sarıoğlan A. THERMOCHEMICAL CONVERSION BEHAVIOUR OF DIFFERENT BIOMASS FEEDSTOCKS: PYROLYSIS AND GASIFICATION. JOTCSA. 2017;3:731–746.
MLA
Gülsaç, Işıl, et al. “THERMOCHEMICAL CONVERSION BEHAVIOUR OF DIFFERENT BIOMASS FEEDSTOCKS: PYROLYSIS AND GASIFICATION”. Journal of the Turkish Chemical Society Section A: Chemistry, vol. 3, no. 3, Jan. 2017, pp. 731-46, doi:10.18596/jotcsa.287307.
Vancouver
1.Işıl Gülsaç, Yeliz Çetin, Berrin Engin, Parvana Aksoy, Hakan Karataş, Alper Sarıoğlan. THERMOCHEMICAL CONVERSION BEHAVIOUR OF DIFFERENT BIOMASS FEEDSTOCKS: PYROLYSIS AND GASIFICATION. JOTCSA. 2017 Jan. 1;3(3):731-46. doi:10.18596/jotcsa.287307

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